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November 28, 2018, at 08:07 PM by 222.155.104.198 -
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[-''Nov. 2018.''-]
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November 28, 2018, at 08:06 PM by 222.155.104.198 -
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November 28, 2018, at 08:05 PM by 222.155.104.198 -
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'''Congratulations to Danny Baillie winning The Division of Science Early-Career Researcher of the year!:'''\\
 
to:
'''Division of Science Early-Career Researcher of the year 2018!:'''\\
 Congratulations to Danny Baillie who won the prize at the annual Division of Science Awards Event for his work on self-bound quantum droplets.
November 28, 2018, at 08:04 PM by 222.155.104.198 -
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November 28, 2018, at 08:02 PM by 222.155.104.198 -
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'''Congratulations to Danny Baillie winning The Division of Science Early-Career Researcher of the year!:'''\\
 


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January 19, 2018, at 08:35 AM by 121.98.29.160 -
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2006-2017 Undergraduate summer Students Nanako Shitara and Shreya Bir have taken the BTG into the world of video production with a video abstract for their paper “Domain percolation in a quenched ferromagnetic spinor condensate” published in the  [[http://iopscience.iop.org/article/10.1088/1367-2630/aa7e70/meta | New Journal of Physics.]].
to:
2016-2017 Undergraduate summer Students Nanako Shitara and Shreya Bir have taken the BTG into the world of video production with a video abstract for their paper “Domain percolation in a quenched ferromagnetic spinor condensate” published in the [[http://iopscience.iop.org/article/10.1088/1367-2630/aa7e70/meta | New Journal of Physics.]].
January 19, 2018, at 08:35 AM by 121.98.29.160 -
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January 19, 2018, at 08:35 AM by 121.98.29.160 -
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=======
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2006-2017 Undergraduate summer Students Nanako Shitara and Shreya Bir have taken the BTG into the world of video production with a video abstract for their paper “Domain percolation in a quenched ferromagnetic spinor condensate” published in the  [[http://iopscience.iop.org/article/10.1088/1367-2630/aa7e70/meta | New Journal of Physics]].
to:
2006-2017 Undergraduate summer Students Nanako Shitara and Shreya Bir have taken the BTG into the world of video production with a video abstract for their paper “Domain percolation in a quenched ferromagnetic spinor condensate” published in the  [[http://iopscience.iop.org/article/10.1088/1367-2630/aa7e70/meta | New Journal of Physics.]].
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'''Cool video abstract on some cool work''' \\
2006-2017 Undergraduate summer Students Nanako Shitara and Shreya Bir have taken the BTG into the world of video production with a video abstract for their paper “Domain percolation in a quenched ferromagnetic spinor condensate” published in the  [[http://iopscience.iop.org/article/10.1088/1367-2630/aa7e70/meta | New Journal of Physics.]].
[-''Sept. 2017.''-]
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>>>>>>>
January 19, 2018, at 08:34 AM by 121.98.29.160 -
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2006-2017 Undergraduate summer Students Nanako Shitara and Shreya Bir have taken the BTG into the world of video production with a video abstract for their paper “Domain percolation in a quenched ferromagnetic spinor condensate” published in the  [[http://iopscience.iop.org/article/10.1088/1367-2630/aa7e70/meta | New Journal of Physics.]].
to:
2006-2017 Undergraduate summer Students Nanako Shitara and Shreya Bir have taken the BTG into the world of video production with a video abstract for their paper “Domain percolation in a quenched ferromagnetic spinor condensate” published in the  [[http://iopscience.iop.org/article/10.1088/1367-2630/aa7e70/meta | New Journal of Physics]].
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=======
'''Cool video abstract on some cool work''' \\
2006-2017 Undergraduate summer Students Nanako Shitara and Shreya Bir have taken the BTG into the world of video production with a video abstract for their paper “Domain percolation in a quenched ferromagnetic spinor condensate” published in the  [[http://iopscience.iop.org/article/10.1088/1367-2630/aa7e70/meta | New Journal of Physics.]].
[-''Sept. 2017.''-]
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January 19, 2018, at 08:31 AM by 121.98.29.160 -
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'''Cool video abstract on some cool work''' \\
2006-2017 Undergraduate summer Students Nanako Shitara and Shreya Bir have taken the BTG into the world of video production with a video abstract for their paper “Domain percolation in a quenched ferromagnetic spinor condensate” published in the  [[http://iopscience.iop.org/article/10.1088/1367-2630/aa7e70/meta | New Journal of Physics.]].
[-''Sept. 2017.''-]
August 11, 2017, at 02:18 PM by 139.80.236.40 -
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'''Congratulations Matt Reeves'''
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'''Congratulations Matt Reeves''' \\
August 11, 2017, at 02:16 PM by 139.80.236.40 -
August 11, 2017, at 02:16 PM by 139.80.236.40 -
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'''Welcome Jinyan Li'''' \\
We welcome visiting researcher Associated Professor Jingyan Li from Wuhan Textile University. Professor Li is funded by the Chines Academy of Sciences for one year research visit to our group to study quantum states of superconducting qubit systems.  \\
[-''Jan. 2017.''-]
to:
'''Welcome Stuart Szigeti''' \\
We welcome Dr Stuart Szigeti for a six month visit funded by an Endeavour Fellowship from the Australian Research Council. Stuart is working with Ashton on control theory of finite temperature Bose-Einstein condensates.\\
[-''July. 2017.''-]
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'''Welcome Jingyan Li''' \\
We welcome Associated Professor Jingyan Li from Wuhan Textile University for a one year research visit funded by the Chinese Academy of Sciences. Professor Li is visiting Ashton to study quantum states of superconducting qubit systems.  \\
[-''Jan. 2017.''-]
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'''Congratulations Matt Reeves'''
Matt has finished his PhD and taken up a postdoc research fellow position with Matthew Davis' group at the University of Queensland. \\
August 11, 2017, at 02:11 PM by 139.80.236.40 -
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'''Welcome Jinyan Li'''' \\
We welcome visiting researcher Associated Professor Jingyan Li from Wuhan Textile University. Professor Li is funded by the Chines Academy of Sciences for one year research visit to our group to study quantum states of superconducting qubit systems.  \\
[-''Jan. 2017.''-]
July 24, 2016, at 04:33 PM by 101.231.140.162 -
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'''Welcome Andréane ''' \\
We welcome visiting student Andréa Bourges from France for a 3 month research attachment to study coarsening dynamics in spinor condensates.  \\
[-''May. 2015.''-]
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[-''June. 2015.''-]
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We welcome visiting research fellow Dr Chao-Fei Liu, funded by the Chinese Academy of Sciences for a one year visit to Otago to research quantum turbulence.  \\
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We welcome visiting research fellow Dr Chao-Fei Liu, funded by the Chinese Academy of Sciences for a one year visit to our group to research quantum turbulence.  \\
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[[<<]]
[-''June. 2015.''-]
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'''Welcome Chao-Fei!''' \\
We welcome visiting research fellow Dr Chao-Fei Liu, funded by the Chinese Academy of Sciences for a one year visit to Otago to research quantum turbulence.  \\
[-''Sep. 2015.''-]

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July 20, 2015, at 05:09 PM by 139.80.236.40 -
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!!!! Onsager-Kraichnan Condensation
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!!!! Onsager-Kraichnan Condensation in decaying two-dimensional quantum turbulence
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July 20, 2015, at 05:07 PM by 139.80.236.40 -
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!!!! Onsager-Kraichnan condensation in decaying two-dimensional quantum turbulence
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!!!! Onsager-Kraichnan Condensation
July 20, 2015, at 05:07 PM by 139.80.236.40 -
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!!!! Superfluid Reynolds Number
%thumb width=263px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#supR|Attach:wake.png]]
>><<
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!!!! Thermally activated collapse of a dipolar condensate
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>><<
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!!!! Thermally activated collapse of a dipolar condensate
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>><<
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!!!! Fingerprinting Rotons in a Dipolar Condensate
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June 08, 2015, at 10:53 AM by 139.80.236.40 -
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[-''Oct. 2014.''-]

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Dr Chao-Fei Liu, currently at the [[http://english.iop.cas.cn|National Laboratory for Condensed Matter Physics]] in Beijing, has been awarded a Chinese Government Scholarship, funded by the [[http://en.csc.edu.cn|China Scholarship Council]], to work with Ashton on two-dimensional quantum turbulence, starting in 2015.  \\
June 08, 2015, at 10:52 AM by 139.80.236.40 -
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June 05, 2015, at 02:52 PM by 139.80.236.40 -
June 05, 2015, at 02:51 PM by 139.80.236.40 -
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[[<<]]
[-''June. 2015.''-]
June 05, 2015, at 02:50 PM by 139.80.236.40 -
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!!! Celebrating 20 years of (dilute gas) Bose-Einstein condensation: Theorists + Experimentalists + cake. (Note: Otago had the first southern hemisphere BEC in 1998(.
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'''Celebrating 20 years of (dilute gas) Bose-Einstein condensation:'''\\
Theorists + Experimentalists + cake. (Note: Otago had the first southern hemisphere BEC in 1998).
June 05, 2015, at 02:30 PM by 139.80.236.40 -
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!!! Celebrating 20 years of (dilute gas) Bose-Einstein condensation: Theorists + Experimentalists + cake. (Note: Otago had the first southern hemisphere BEC in 1998(.
May 13, 2015, at 05:09 PM by 139.80.236.40 -
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Our group is interested in a wide range of quantum phenomenon that can be explored using ultra-cold gases and quantum optical systems. We are part of the [[http://www.physics.otago.ac.nz/qso/ | Centre for Quantum Science]] based in the  [[http://www.physics.otago.ac.nz/ | Physics Department]] of the [[http://www.otago.ac.nz/ | University of Otago]].
to:
Our group is interested in a wide range of quantum phenomenon that can be explored using ultra-cold gases and quantum optical systems. We are part of the [[http://quantum.otago.ac.nz | Centre for Quantum Science]] based in the  [[http://www.physics.otago.ac.nz/ | Physics Department]] of the [[http://www.otago.ac.nz/ | University of Otago]].
May 05, 2015, at 03:33 PM by 139.80.236.40 -
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Our group is interested in a wide range of quantum phenomenon that can be explored using ultra-cold gases and quantum optical systems. We are part of the [[http://www.physics.otago.ac.nz/nx/jdc/home-page.html | Centre for Quantum Science]] based in the  [[http://www.physics.otago.ac.nz/ | Physics Department]] of the [[http://www.otago.ac.nz/ | University of Otago]].
to:
Our group is interested in a wide range of quantum phenomenon that can be explored using ultra-cold gases and quantum optical systems. We are part of the [[http://www.physics.otago.ac.nz/qso/ | Centre for Quantum Science]] based in the  [[http://www.physics.otago.ac.nz/ | Physics Department]] of the [[http://www.otago.ac.nz/ | University of Otago]].
May 05, 2015, at 03:32 PM by 139.80.236.40 -
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Our group is interested in a wide range of quantum phenomenon that can be explored using ultra-cold gases and quantum optical systems. We are part of the [[http://www.physics.otago.ac.nz/nx/jdc/home-page.html | Jack-Dodd Centre for Quantum Technology]] at the [[http://www.physics.otago.ac.nz/ | Physics Department]] of the [[http://www.otago.ac.nz/ | University of Otago]].
to:
Our group is interested in a wide range of quantum phenomenon that can be explored using ultra-cold gases and quantum optical systems. We are part of the [[http://www.physics.otago.ac.nz/nx/jdc/home-page.html | Centre for Quantum Science]] based in the  [[http://www.physics.otago.ac.nz/ | Physics Department]] of the [[http://www.otago.ac.nz/ | University of Otago]].
March 05, 2015, at 03:36 PM by 139.80.236.40 -
March 05, 2015, at 03:34 PM by 139.80.236.40 -
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We welcome new postdoctoral research fellow Dr Xiaoquan Yu, formerly at [[http://www.sissa.it/physics|SISA]], and at [[http://tur-www1.massey.ac.nz/~theochem/?page=home&menu=group&group=flach|Sergej Flach group]] at [[http://www.nzias.ac.nz|NZIAS]], Xiaoquan is joining us to work on critical phenomena of in two-dimensional quantum turbulence.  \\
to:
We welcome new postdoctoral research fellow Dr Xiaoquan Yu, formerly at [[http://www.sissa.it/physics|SISSA]], and at [[http://tur-www1.massey.ac.nz/~theochem/?page=home&menu=group&group=flach|Sergej Flach group]] at [[http://www.nzias.ac.nz|NZIAS]], Xiaoquan is joining us to work on critical phenomena of in two-dimensional quantum turbulence.  \\
February 17, 2015, at 09:44 AM by 139.80.236.40 -
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The thesis of Otago PhD candidate Sam Rooney has been ranked among the [[http://www.otago.ac.nz/sciences/research/student/|2015 Exceptional PhD Theses for the Division of Sciences]]. A thesis is regarded as of exceptional quality when all three examiners of a candidate's thesis agree that the thesis is of an exceptional standard in every respect – research content, originality, quality of expression and accuracy of presentation – and is amongst the top 10% of theses examined. Sam's PhD research pioneered applications of the open quantum systems approach to dilute-gas Bose-Einstein condensates, leading to significant advances in our understanding of dissipative bosonic matter waves, and the quantitative modelling of high-temperature experiments.
to:
The thesis of Otago PhD candidate Sam Rooney has been ranked among the [[http://www.otago.ac.nz/sciences/research/student/|2015 Exceptional PhD Theses for the Division of Sciences]]. A thesis is regarded as of exceptional quality when all three examiners of a candidate's thesis agree that the thesis is of an exceptional standard in every respect – research content, originality, quality of expression and accuracy of presentation – and is amongst the top 10% of theses examined. Sam's PhD research pioneered applications of the open quantum systems approach to dilute-gas Bose-Einstein condensates, leading to significant advances in our understanding of dissipative bosonic matter waves, and the quantitative modelling of high-temperature experiments.\\
[-''Jan. 2015.''-]
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February 17, 2015, at 09:43 AM by 139.80.236.40 -
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We welcome new postdoctoral research fellow Dr Xiaoquan Yu, formerly at [[http://www.sissa.it/physics|SISA]], and at [[http://tur-www1.massey.ac.nz/~theochem/?page=home&menu=group&group=flach|Sergej Flach group]] at [[http://www.nzias.ac.nz|NZIAS]], Xiaoquan is joining us to work on two-dimensional quantum turbulence.  \\
to:
We welcome new postdoctoral research fellow Dr Xiaoquan Yu, formerly at [[http://www.sissa.it/physics|SISA]], and at [[http://tur-www1.massey.ac.nz/~theochem/?page=home&menu=group&group=flach|Sergej Flach group]] at [[http://www.nzias.ac.nz|NZIAS]], Xiaoquan is joining us to work on critical phenomena of in two-dimensional quantum turbulence.  \\
February 17, 2015, at 09:43 AM by 139.80.236.40 -
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'''Welcome Xiaoquan!''' \\
February 17, 2015, at 09:42 AM by 139.80.236.40 -
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----
We welcome new postdoctoral research fellow Dr Xiaoquan Yu, formerly at [[http://www.sissa.it/physics|SISA]], and at [[http://tur-www1.massey.ac.nz/~theochem/?page=home&menu=group&group=flach|Sergej Flach group]] at [[http://www.nzias.ac.nz|NZIAS]], Xiaoquan is joining us to work on two-dimensional quantum turbulence.  \\
[-''Feb. 2015.''-]
January 30, 2015, at 03:45 PM by 139.80.236.40 -
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'''Congratulations Sam!''' \\
The thesis of Otago PhD candidate Sam Rooney has been ranked among the [[http://www.otago.ac.nz/sciences/research/student/|2015 Exceptional PhD Theses for the Division of Sciences]]. A thesis is regarded as of exceptional quality when all three examiners of a candidate's thesis agree that the thesis is of an exceptional standard in every respect – research content, originality, quality of expression and accuracy of presentation – and is amongst the top 10% of theses examined. Sam's PhD research pioneered applications of the open quantum systems approach to dilute-gas Bose-Einstein condensates, leading to significant advances in our understanding of dissipative bosonic matter waves, and the quantitative modelling of high-temperature experiments.

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!!!! Number Fluctuations of Dipolar BEC
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>><<
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!!!! The stochastic projected Gross-Pitaevskii equation: energy damping interaction
%thumb width=253px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#spgpe|Attach:proc.png]]
December 03, 2014, at 02:05 PM by 139.80.236.40 -
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'''PostDoc Position - Closing Nov. 28th'''\\
We are looking for a postdoctoral fellow to work in the BTG group. More details [[https://otago.taleo.net/careersection/2/jobdetail.ftl?lang=en&job=1401769| here]].

November 25, 2014, at 11:00 AM by 139.80.236.40 -
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November 25, 2014, at 10:59 AM by 139.80.236.40 -
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November 25, 2014, at 10:58 AM by 139.80.236.40 -
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November 25, 2014, at 10:57 AM by 139.80.236.40 -
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!!!! Thermally activated collapse
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!!!! Thermally activated collapse of a dipolar condensate
%thumb
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November 25, 2014, at 10:56 AM by 139.80.236.40 -
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>><<
\\

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\\

November 25, 2014, at 10:55 AM by 139.80.236.40 -
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!!!! Thermally activated collapse
%thumb width=260px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#tac|Attach:tac.png]]
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!!!! The stochastic projected Gross-Pitaevskii equation: energy damping interaction
%thumb width=253px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#spgpe|Attach:proc.png]]
>><<
[[<<]]
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>>lframe width=263px<<
!!!! Onsager-Kraichnan condensation in decaying two-dimensional quantum turbulence
%thumb width=260px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#okc|Attach:okc.png]]
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!!!! Fingerprinting Rotons in a Dipolar Condensate
%thumb width=216px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]]
>><<
[[<<]]
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!!!! Dynamical test for c-field theory
%thumb width=260px%
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!!!! Onsager-Kraichnan condensation in decaying two-dimensional quantum turbulence
%thumb width=260px%
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!!!! The stochastic projected Gross-Pitaevskii equation: energy damping interaction
%thumb width=253px%
[[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#spgpe|Attach:proc.png]]
to:
!!!! Fingerprinting Rotons in a Dipolar Condensate
%thumb width=216px%
[[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]]
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November 15, 2014, at 09:57 AM by 122.61.104.70 -
November 15, 2014, at 09:57 AM by 122.61.104.70 -
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We are looking for a postdoctoral fellow to work in the BTG group. More details [[
https://otago.taleo.net/careersection/2/jobdetail.ftl?lang=en&job=1401769| here]].
to:
We are looking for a postdoctoral fellow to work in the BTG group. More details [[https://otago.taleo.net/careersection/2/jobdetail.ftl?lang=en&job=1401769| here]].
November 15, 2014, at 09:57 AM by 122.61.104.70 -
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'''PostDoc Position - Closing Nov. 28th'''\\
We are looking for a postdoctoral fellow to work in the BTG group. More details [[
https://otago.taleo.net/careersection/2/jobdetail.ftl?lang=en&job=1401769| here]].

October 22, 2014, at 03:09 PM by 139.80.236.40 -
Changed line 12 from:
Former PhD student Russell Bisset [now a postdoctoral fellow at Los Alamos National Laboratory] has been awarded the 2014 Hatherton Award by the Royal Society of New Zealand, for his paper “Fingerprinting Rotons in a Dipolar Condensate: Super-Poissonian Peak in the Atom-Number Fluctuations” , that was published in Physical Review Letters in 2013. The award is for the best scientific paper by a student registered for the degree of PhD in Physical Sciences, Earth Sciences and Mathematical and Information Sciences at a New Zealand university.
to:
Former PhD student Russell Bisset [now a postdoctoral fellow at Los Alamos National Laboratory] has been awarded the 2014 Hatherton Award by the Royal Society of New Zealand, for his paper “Fingerprinting Rotons in a Dipolar Condensate: Super-Poissonian Peak in the Atom-Number Fluctuations” , that was published in Physical Review Letters in 2013. The award is for the best scientific paper by a student registered for the degree of PhD in Physical Sciences, Earth Sciences and Mathematical and Information Sciences at a New Zealand university.  \\
Changed line 16 from:
Dr Chao-Fei Liu, currently at the [[http://english.iop.cas.cn|National Laboratory for Condensed Matter Physics]] in Beijing, has been awarded a Chinese Government Scholarship, funded by the [[http://en.csc.edu.cn|China Scholarship Council]], to work with Ashton on two-dimensional quantum turbulence, starting in 2015.
to:
Dr Chao-Fei Liu, currently at the [[http://english.iop.cas.cn|National Laboratory for Condensed Matter Physics]] in Beijing, has been awarded a Chinese Government Scholarship, funded by the [[http://en.csc.edu.cn|China Scholarship Council]], to work with Ashton on two-dimensional quantum turbulence, starting in 2015.  \\
October 22, 2014, at 03:09 PM by 139.80.236.40 -
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'''Congratulations Russell!'''
to:
'''Congratulations Russell!''' \\
October 22, 2014, at 03:08 PM by 139.80.236.40 -
Changed lines 11-14 from:
Former PhD student Russell Bisset [now a postdoctoral fellow at Los Alamos National Laboratory] has been awarded the 2014 Hatherton Award by the Royal Society of New Zealand, for his paper “Fingerprinting Rotons in a Dipolar Condensate: Super-Poissonian Peak in the Atom-Number Fluctuations” , that was published in Physical Review Letters in 2013. The award is for the best scientific paper by a student registered for the degree of PhD in Physical Sciences, Earth Sciences and Mathematical and Information Sciences at a New Zealand university.
to:
'''Congratulations Russell!'''
Former PhD student Russell Bisset [now a postdoctoral fellow at Los Alamos National Laboratory] has been awarded
the 2014 Hatherton Award by the Royal Society of New Zealand, for his paper “Fingerprinting Rotons in a Dipolar Condensate: Super-Poissonian Peak in the Atom-Number Fluctuations” , that was published in Physical Review Letters in 2013. The award is for the best scientific paper by a student registered for the degree of PhD in Physical Sciences, Earth Sciences and Mathematical and Information Sciences at a New Zealand university. 
[-''Oct. 2014.''-]

Changed lines 16-18 from:
Dr Chao-Fei Liu, currently at the [[http://english.iop.cas.cn|National Laboratory for Condensed Matter Physics]] in Beijing, has been awarded a Chinese Government Scholarship, funded by the [[http://en.csc.edu.cn|China Scholarship Council]], to work with Ashton on two-dimensional quantum turbulence, starting in 2015.
to:
Dr Chao-Fei Liu, currently at the [[http://english.iop.cas.cn|National Laboratory for Condensed Matter Physics]] in Beijing, has been awarded a Chinese Government Scholarship, funded by the [[http://en.csc.edu.cn|China Scholarship Council]], to work with Ashton on two-dimensional quantum turbulence, starting in 2015. 
[-''Oct. 2014.''-]

October 22, 2014, at 03:07 PM by 139.80.236.40 -
Changed lines 10-11 from:
to:
----
Former PhD student Russell Bisset [now a postdoctoral fellow at Los Alamos National Laboratory] has been awarded the 2014 Hatherton Award by the Royal Society of New Zealand, for his paper “Fingerprinting Rotons in a Dipolar Condensate: Super-Poissonian Peak in the Atom-Number Fluctuations” , that was published in Physical Review Letters in 2013. The award is for the best scientific paper by a student registered for the degree of PhD in Physical Sciences, Earth Sciences and Mathematical and Information Sciences at a New Zealand university.
October 08, 2014, at 10:40 AM by 139.80.236.40 -
Added lines 11-12:
----
Dr Chao-Fei Liu, currently at the [[http://english.iop.cas.cn|National Laboratory for Condensed Matter Physics]] in Beijing, has been awarded a Chinese Government Scholarship, funded by the [[http://en.csc.edu.cn|China Scholarship Council]], to work with Ashton on two-dimensional quantum turbulence, starting in 2015.
Changed lines 10-21 from:
!!! MBIE Science investment draft
On the 28th of May 2014 The Ministry of Business, Innovation, and Employment  issued a draft [[http://www.msi.govt.nz/update-me/major-projects/national-statement-of-science-investment/|National Statement of Science Investment]], calling for comment from the scientific and wider community. [[http://figshare.com/articles/NATIONAL_STATEMENT_OF_SCIENCE_INVESTMENT_DRAFT_Response_from_Rutherford_Discovery_Fellowship_recipients_2010_2013_/1148891|In a recent statement]], the 2010-2013 Rutherford Discovery Fellows have offered feedback on the draft document, endorsing the Ministry's prioritisation of research investment, and emphasising the need for further action in three areas:
 
1. Funding for science and research in New Zealand must, as a matter of urgency, be increased until it is comparable to science investment in other small advanced economies (as a fraction of gross domestic product (GDP).

2. Greater expenditure on investigator-led funding is required if New Zealand is to develop into a strong and prosperous advanced economy. This must happen in the short term.

3. New Zealand urgently requires postdoctoral funding on par with other small advanced economies.

[[http://figshare.com/articles/NATIONAL_STATEMENT_OF_SCIENCE_INVESTMENT_DRAFT_Response_from_Rutherford_Discovery_Fellowship_recipients_2010_2013_/1148891|See the full Rutherford Discovery Fellow response here]].

[[http://assets.royalsociety.org.nz/media/2014/08/RSNZ-Comments-on-Draft-NSSI.pdf|A response from the Royal Society Panel can be found here]].
to:
August 26, 2014, at 12:16 PM by 139.80.236.40 -
Changed line 11 from:
On the 28th of May 2014 The Ministry of Business, Innovation, and Employment  issued a draft [[http://www.msi.govt.nz/update-me/major-projects/national-statement-of-science-investment/|National Statement of Science Investment]], calling for comment from the scientific and wider community. [[http://figshare.com/articles/NATIONAL_STATEMENT_OF_SCIENCE_INVESTMENT_DRAFT_Response_from_Rutherford_Discovery_Fellowship_recipients_2010_2013_/1148891|In a recent statement]], the 2010-2013 Rutherford Discovery Fellows have offered their feedback, endorsing the Ministry's prioritisation of research investment, and emphasising the need for further action in three areas:
to:
On the 28th of May 2014 The Ministry of Business, Innovation, and Employment  issued a draft [[http://www.msi.govt.nz/update-me/major-projects/national-statement-of-science-investment/|National Statement of Science Investment]], calling for comment from the scientific and wider community. [[http://figshare.com/articles/NATIONAL_STATEMENT_OF_SCIENCE_INVESTMENT_DRAFT_Response_from_Rutherford_Discovery_Fellowship_recipients_2010_2013_/1148891|In a recent statement]], the 2010-2013 Rutherford Discovery Fellows have offered feedback on the draft document, endorsing the Ministry's prioritisation of research investment, and emphasising the need for further action in three areas:
August 26, 2014, at 12:15 PM by 139.80.236.40 -
Changed line 19 from:
[[http://figshare.com/articles/NATIONAL_STATEMENT_OF_SCIENCE_INVESTMENT_DRAFT_Response_from_Rutherford_Discovery_Fellowship_recipients_2010_2013_/1148891|See the full response here]].
to:
[[http://figshare.com/articles/NATIONAL_STATEMENT_OF_SCIENCE_INVESTMENT_DRAFT_Response_from_Rutherford_Discovery_Fellowship_recipients_2010_2013_/1148891|See the full Rutherford Discovery Fellow response here]].
August 26, 2014, at 12:15 PM by 139.80.236.40 -
Added lines 20-21:

[[http://assets.royalsociety.org.nz/media/2014/08/RSNZ-Comments-on-Draft-NSSI.pdf|A response from the Royal Society Panel can be found here]].
August 25, 2014, at 12:18 PM by 139.80.236.40 -
Changed line 11 from:
On the 28th of May 2014 The Ministry of Business, Innovation, and Employment  issued a draft [[http://www.msi.govt.nz/update-me/major-projects/national-statement-of-science-investment/|National Statement of Science Investment]], calling for comment from the scientific and wider community. [[http://figshare.com/articles/NATIONAL_STATEMENT_OF_SCIENCE_INVESTMENT_DRAFT_Response_from_Rutherford_Discovery_Fellowship_recipients_2010_2013_/1148891|In a recent statement]], the 2010-2013 Rutherford Discovery Fellows have offered their feedback, endorsing the Ministry's prioritisation of research investment, and further advocating that:
to:
On the 28th of May 2014 The Ministry of Business, Innovation, and Employment  issued a draft [[http://www.msi.govt.nz/update-me/major-projects/national-statement-of-science-investment/|National Statement of Science Investment]], calling for comment from the scientific and wider community. [[http://figshare.com/articles/NATIONAL_STATEMENT_OF_SCIENCE_INVESTMENT_DRAFT_Response_from_Rutherford_Discovery_Fellowship_recipients_2010_2013_/1148891|In a recent statement]], the 2010-2013 Rutherford Discovery Fellows have offered their feedback, endorsing the Ministry's prioritisation of research investment, and emphasising the need for further action in three areas:
August 25, 2014, at 12:17 PM by 139.80.236.40 -
Added line 19:
[[http://figshare.com/articles/NATIONAL_STATEMENT_OF_SCIENCE_INVESTMENT_DRAFT_Response_from_Rutherford_Discovery_Fellowship_recipients_2010_2013_/1148891|See the full response here]].
August 25, 2014, at 11:14 AM by 139.80.236.40 -
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!!! MSI Science investment draft
to:
!!! MBIE Science investment draft
August 25, 2014, at 11:13 AM by 139.80.236.40 -
Added line 10:
!!! MSI Science investment draft
August 25, 2014, at 11:12 AM by 139.80.236.40 -
Added lines 10-18:
On the 28th of May 2014 The Ministry of Business, Innovation, and Employment  issued a draft [[http://www.msi.govt.nz/update-me/major-projects/national-statement-of-science-investment/|National Statement of Science Investment]], calling for comment from the scientific and wider community. [[http://figshare.com/articles/NATIONAL_STATEMENT_OF_SCIENCE_INVESTMENT_DRAFT_Response_from_Rutherford_Discovery_Fellowship_recipients_2010_2013_/1148891|In a recent statement]], the 2010-2013 Rutherford Discovery Fellows have offered their feedback, endorsing the Ministry's prioritisation of research investment, and further advocating that:
 
1. Funding for science and research in New Zealand must, as a matter of urgency, be increased until it is comparable to science investment in other small advanced economies (as a fraction of gross domestic product (GDP).

2. Greater expenditure on investigator-led funding is required if New Zealand is to develop into a strong and prosperous advanced economy. This must happen in the short term.

3. New Zealand urgently requires postdoctoral funding on par with other small advanced economies.

----
July 25, 2014, at 03:12 PM by 139.80.236.40 -
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We have acquired PBRF funding to leverage recent advances in graphics processing hardware. Our two  [[http://www.nvidia.com/object/tesla-servers.html|NVidia Tesla K40 GPU Accelerators]] are each equivalent to 2880 CUDA cores, with a peak double precision performance of 1.43Tflops. To find out more visit our [[http://www.physics.otago.ac.nz/research/btg/gpu|GPU page]].
to:
We have acquired PBRF funding to leverage recent advances in graphics processing hardware. Our two  [[http://www.nvidia.com/object/tesla-servers.html|NVidia Tesla K40 GPU Accelerators]] are each equivalent to 2880 CUDA cores, with a peak double precision performance of 1.43Tflops. To find out more visit our [[http://www.physics.otago.ac.nz/research/btg/Site/GPUComputing|GPU page]].
July 25, 2014, at 03:10 PM by 139.80.236.40 -
Changed line 12 from:
We have acquired PBRF funding to leverage recent advances in graphics processing hardware. Our two  [[http://www.nvidia.com/object/tesla-servers.html|NVidia Tesla K40 GPU Accelerators]] are each equivalent to 2880 CUDA cores, with a peak double precision performance of 1.43Tflops.
to:
We have acquired PBRF funding to leverage recent advances in graphics processing hardware. Our two  [[http://www.nvidia.com/object/tesla-servers.html|NVidia Tesla K40 GPU Accelerators]] are each equivalent to 2880 CUDA cores, with a peak double precision performance of 1.43Tflops. To find out more visit our [[http://www.physics.otago.ac.nz/research/btg/gpu|GPU page]].
July 25, 2014, at 09:29 AM by 139.80.236.40 -
Changed line 12 from:
We have acquired PBRF funding to leverage recent advances in graphics processing hardware. Our two  [[http://www.nvidia.com/object/tesla-servers.html|NVidia Tesla K40 GPU Accelerators]] are each equivalent to nearly 3000 CUDA cores, with a peak double precision performance of 1.43Tflops.
to:
We have acquired PBRF funding to leverage recent advances in graphics processing hardware. Our two  [[http://www.nvidia.com/object/tesla-servers.html|NVidia Tesla K40 GPU Accelerators]] are each equivalent to 2880 CUDA cores, with a peak double precision performance of 1.43Tflops.
July 04, 2014, at 04:35 PM by 139.80.236.40 -
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%rframe width=130px% Attach:cardK40.jpg
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%rframe width=150px% Attach:cardK40.jpg
July 03, 2014, at 09:10 AM by 139.80.236.40 -
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----
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!! GPU hardware for quantum dynamics
to:
!!! GPU hardware for quantum dynamics
July 03, 2014, at 09:09 AM by 139.80.236.40 -
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to:
----
July 03, 2014, at 09:09 AM by 139.80.236.40 -
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!! Latest news
%rframe width=130px% Attach:cardK40.jpg
!! GPU hardware for quantum dynamics
We have acquired PBRF funding to leverage recent advances in graphics processing hardware. Our two  [[http://www.nvidia.com/object/tesla-servers.html|NVidia Tesla K40 GPU Accelerators]] are each equivalent to nearly 3000 CUDA cores, with a peak double precision performance of 1.43Tflops.

[[<<]]
[-''June. 2014.''-]
----
May 26, 2014, at 12:42 PM by 139.80.236.40 -
May 26, 2014, at 12:42 PM by 139.80.236.40 -
Changed lines 5-6 from:
Our group is interested in a wide range of quantum phenomenon that can be explored using ultra-cold gases and quantum optical systems. We are part of the [[http://www.physics.otago.ac.nz/nx/jdc/home-page.html | Jack-Dodd Centre for Quantum Technology]] at the [[http://www.physics.otago.ac.nz/ | Physics Department]] of the [[http://www.otago.ac.nz/ | University of Otago]].%%
to:
Our group is interested in a wide range of quantum phenomenon that can be explored using ultra-cold gases and quantum optical systems. We are part of the [[http://www.physics.otago.ac.nz/nx/jdc/home-page.html | Jack-Dodd Centre for Quantum Technology]] at the [[http://www.physics.otago.ac.nz/ | Physics Department]] of the [[http://www.otago.ac.nz/ | University of Otago]].
\\
May 26, 2014, at 12:42 PM by 139.80.236.40 -
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May 26, 2014, at 12:42 PM by 139.80.236.40 -
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May 26, 2014, at 12:41 PM by 139.80.236.40 -
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May 26, 2014, at 12:41 PM by 139.80.236.40 -
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%thumb width=216px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]]
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%thumb width=253px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#spgpe|Attach:proc.png]]
May 26, 2014, at 12:40 PM by 139.80.236.40 -
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%thumb width=260px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#okc|Attach:okc.png]]
May 26, 2014, at 12:39 PM by 139.80.236.40 -
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May 26, 2014, at 12:39 PM by 139.80.236.40 -
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May 23, 2014, at 03:09 PM by 139.80.236.40 -
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!!!! Test for c-field theory
to:
!!!! Dynamical test for c-field theory
May 23, 2014, at 03:07 PM by 139.80.236.40 -
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%thumb width=273px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#spgpe|Attach:proc.png]]
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%thumb width=263px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#spgpe|Attach:proc.png]]
May 23, 2014, at 03:07 PM by 139.80.236.40 -
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!!!! Experimental test for c-field theory
to:
!!!! Test for c-field theory
May 23, 2014, at 03:06 PM by 139.80.236.40 -
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!!!! An experimental test for classical-field theory
to:
!!!! Experimental test for c-field theory
May 23, 2014, at 03:05 PM by 139.80.236.40 -
Changed line 29 from:
%thumb width=263px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#spgpe|Attach:proc.png]]
to:
%thumb width=273px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#spgpe|Attach:proc.png]]
May 23, 2014, at 03:05 PM by 139.80.236.40 -
Changed line 29 from:
%thumb width=253px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#spgpe|Attach:proc.png]]
to:
%thumb width=263px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#spgpe|Attach:proc.png]]
May 23, 2014, at 03:05 PM by 139.80.236.40 -
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!!!! The stochastic projected Gross-Pitaevskii equation
to:
!!!! The stochastic projected Gross-Pitaevskii equation: energy damping interaction
May 23, 2014, at 03:04 PM by 139.80.236.40 -
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%thumb width=223px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#spgpe|Attach:proc.png]]
to:
%thumb width=253px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#spgpe|Attach:proc.png]]
May 23, 2014, at 03:04 PM by 139.80.236.40 -
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%thumb width=253px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]]
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%thumb width=223px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]]
May 23, 2014, at 03:04 PM by 139.80.236.40 -
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%thumb width=253px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]]
May 23, 2014, at 03:04 PM by 139.80.236.40 -
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%thumb width=263px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]]
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%thumb width=273px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]]
May 23, 2014, at 03:03 PM by 139.80.236.40 -
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%thumb width=223px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]]
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%thumb width=263px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]]
May 23, 2014, at 03:03 PM by 139.80.236.40 -
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!!!! Fingerprinting Rotons in a Dipolar Condensate
%thumb
width=223px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]]
to:
!!!! The stochastic projected Gross-Pitaevskii equation
%thumb
width=223px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#spgpe|Attach:proc.png]]
May 23, 2014, at 03:01 PM by 139.80.236.40 -
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!!!! Onsager-Kraichnan condensation in decaying two-dimensional quantum turbulence
%thumb
width=270px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#okc|Attach:okc.png]]
to:
!!!! An experimental test for classical-field theory
%thumb
width=270px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#pcformsgpe|Attach:pcsgpe.png]]
May 23, 2014, at 02:59 PM by 139.80.236.40 -
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May 23, 2014, at 02:59 PM by 139.80.236.40 -
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[[<<]]
May 23, 2014, at 02:58 PM by 139.80.236.40 -
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May 23, 2014, at 02:58 PM by 139.80.236.40 -
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\\
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[[<<]]
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May 23, 2014, at 02:57 PM by 139.80.236.40 -
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>>lframe width=273px<<
!!!! Onsager-Kraichnan condensation in decaying two-dimensional quantum turbulence
%thumb width=270px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#okc|Attach:okc.png]]
>><<
>>rframe width=273px<<
!!!! Fingerprinting Rotons in a Dipolar Condensate
%thumb width=223px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]]
>><<
[[<<]]
\\
May 23, 2014, at 02:56 PM by 139.80.236.40 -
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---- 
to:
\\

----
May 23, 2014, at 02:56 PM by 139.80.236.40 -
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\
May 23, 2014, at 02:55 PM by 139.80.236.40 -
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%thumb width=223px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.-]
to:
%thumb width=223px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]]
May 23, 2014, at 02:55 PM by 139.80.236.40 -
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%thumb width=270px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#okc|Attach:okc.png]] | [-Emergence of an Onsager-Kraichnan condensate with increasing point-vortex energy.-]
to:
%thumb width=270px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#okc|Attach:okc.png]]
May 23, 2014, at 02:54 PM by 139.80.236.40 -
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%thumb width=220px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.-]
to:
%thumb width=223px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.-]
May 23, 2014, at 02:53 PM by 139.80.236.40 -
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!!!! Fingerprinting Rotons in a Dipolar Condensate: Super-Poissonian Peak in the Atom-Number Fluctuations
%thumb width=180px
% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.-]
to:
!!!! Fingerprinting Rotons in a Dipolar Condensate
%thumb width=220px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.-]
May 23, 2014, at 02:53 PM by 139.80.236.40 -
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%cthumb width=180px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.-]
to:
%thumb width=180px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.-]
May 23, 2014, at 02:52 PM by 139.80.236.40 -
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%thumb width=265px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#okc|Attach:okc.png]] | [-Emergence of an Onsager-Kraichnan condensate with increasing point-vortex energy.-]
to:
%thumb width=270px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#okc|Attach:okc.png]] | [-Emergence of an Onsager-Kraichnan condensate with increasing point-vortex energy.-]
Changed line 18 from:
%thumb width=180px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.-]
to:
%cthumb width=180px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.-]
May 23, 2014, at 02:51 PM by 139.80.236.40 -
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%thumb width=260px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#okc|Attach:okc.png]] | [-Emergence of an Onsager-Kraichnan condensate with increasing point-vortex energy.-]
to:
%thumb width=265px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#okc|Attach:okc.png]] | [-Emergence of an Onsager-Kraichnan condensate with increasing point-vortex energy.-]
Changed line 18 from:
%thumb width=210px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.-]
to:
%thumb width=180px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.-]
May 23, 2014, at 02:51 PM by 139.80.236.40 -
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!!! Onsager-Kraichnan condensation in decaying two-dimensional quantum turbulence
to:
!!!! Onsager-Kraichnan condensation in decaying two-dimensional quantum turbulence
Changed line 17 from:
!!! Fingerprinting Rotons in a Dipolar Condensate: Super-Poissonian Peak in the Atom-Number Fluctuations
to:
!!!! Fingerprinting Rotons in a Dipolar Condensate: Super-Poissonian Peak in the Atom-Number Fluctuations
May 23, 2014, at 02:50 PM by 139.80.236.40 -
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%thumb width=250px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#okc|Attach:okc.png]] | [-Emergence of an Onsager-Kraichnan condensate with increasing point-vortex energy.-]
to:
%thumb width=260px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#okc|Attach:okc.png]] | [-Emergence of an Onsager-Kraichnan condensate with increasing point-vortex energy.-]
Changed line 18 from:
%thumb width=230px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.-]
to:
%thumb width=210px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.-]
May 23, 2014, at 02:50 PM by 139.80.236.40 -
Changed line 18 from:
%thumb width=250px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.-]
to:
%thumb width=230px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.-]
May 23, 2014, at 02:49 PM by 139.80.236.40 -
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%thumb width=350px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#okc|Attach:okc.png]] | [-Emergence of an Onsager-Kraichnan condensate with increasing point-vortex energy.-]
[[http://dx.doi.org/10.1103/PhysRevLett.112.145301 |''Physical Review Letters'' '''112''', 145301 (2014)]]
to:
%thumb width=250px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#okc|Attach:okc.png]] | [-Emergence of an Onsager-Kraichnan condensate with increasing point-vortex energy.-]
Changed lines 18-19 from:
%thumb width=274px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.-]
[[http://link.aps.org/doi/10.1103/PhysRevLett.110.265302|''Physical Review Letters'' '''110''', 265302 (2013)]
]
to:
%thumb width=250px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.-]
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!! Onsager-Kraichnan condensation in decaying two-dimensional quantum turbulence
>>rframe width=350px<<
%thumb width=350px% Attach:okc.png | [-Emergence of an Onsager-Kraichnan condensate with increasing point-vortex energy. Blue and green points indicate vortices that are clustered (links indicate the cluster), and green points show vortices that are paired with an anti-vortex to form a vortex dipole.-]
to:
>>lframe width=355px<<
!!!
Onsager-Kraichnan condensation in decaying two-dimensional quantum turbulence
%thumb width=350px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#okc|Attach:okc.png]] | [-Emergence of an Onsager-Kraichnan condensate with increasing point-vortex energy.-]
[[http://dx.doi.org/10.1103/PhysRevLett.112.145301 |''Physical Review Letters'' '''112''', 145301
(2014)]]
Changed lines 17-19 from:
[[http://dx.doi.org/10.1103/PhysRevLett.112.145301 |''Physical Review Letters'' '''112''', 145301 (2014)]] 

Despite the prominence of Onsager’s point
-vortex model as a statistical description of 2D classical turbulence, a first-principles development of the model for a realistic superfluid has remained an open problem. Here we develop a mapping of a system of quantum vortices described by the homogeneous 2D Gross-Pitaevskii equation (GPE) to the point-vortex model, enabling Monte Carlo sampling of the vortex microcanonical ensemble. We use this approach to survey the full range of vortex states in a 2D superfluid, from the vortex-dipole gas at positive temperature to negative-temperature states exhibiting both macroscopic vortex clustering and kinetic energy condensation, which we term an Onsager-Kraichnan condensate (OKC). Damped GPE simulations reveal that such OKC states can emerge dynamically, via aggregation of small-scale clusters into giant OKC clusters, as the end states of decaying 2D quantum turbulence in a compressible, finite-temperature superfluid. These statistical equilibrium states should be accessible in atomic Bose-Einstein condensate experiments.
to:
>>rframe width=355px<<
!!! Fingerprinting Rotons in a Dipolar Condensate: Super-Poissonian Peak in the Atom
-Number Fluctuations
%thumb width=274px% [[http://www.physics.otago.ac.nz/research/btg/Site/Highlights#frot|Attach:frot.png]] | [-Detection regions for determining number fluctuations.
-]
[[http://link.aps.org/doi/10.1103/PhysRevLett.110.265302|''Physical Review Letters'' '''110''', 265302
(2013)]]
>><<
Changed lines 23-34 from:
[-''April 2014.''-]
----

!! Fingerprinting Rotons in a Dipolar Condensate: Super-Poissonian Peak in the Atom-Number Fluctuations
>>rframe width=250px<<
%thumb width=250px% Attach:frot.png | [-Detection regions for determining number fluctuations.-]
>><<
[[http://link.aps.org/doi/10.1103/PhysRevLett.110.265302|Physical Review Letters '''110''', 265302 (2013)]]
\\

We demonstrate that measurements of atom-number fluctuations in a trapped dipolar condensate can reveal the presence of the elusive roton excitation. The key signature is a super-Poissonian peak in the fluctuations as the size of the measurement cell is varied, with the maximum occurring when the size is comparable to the roton wavelength. The magnitude of this roton feature is enhanced with temperature. The variation in fluctuations across the condensate demonstrates that the roton excitations are effectively confined to propagate in the densest central region, realizing a density trapped roton gas. While our main results are based on full numerical solutions of the mean-field equations, we also develop and validate a simple local density theory. Finally, we consider fluctuations measured within a washer-shaped cell which filters out the contribution of modes with nonzero angular momentum and provides a signal sensitive to individual roton modes.
[[<<]]
[-''Sept 2013.''-]
to:
\
May 23, 2014, at 11:21 AM by 139.80.236.40 -
Changed lines 1-2 from:
!'+Blakie-Bradley Theory Group+'
to:
!'+Blakie Bradley Theory Group+'
Changed lines 12-14 from:
!! Characteristics of Two-Dimensional Quantum Turbulence in a Compressible Superfluid
>>rframe
width=250px<<
%thumb width=250px% Attach:2dqt.png | [-Development of Kolmogorov power-law in the incompressible kinetic energy spectrum of a forced, compressible superfluid.-]
to:
!! Onsager-Kraichnan condensation in decaying two-dimensional quantum turbulence
>>rframe
width=350px<<
%thumb width=350px% Attach:okc.png | [-Emergence of an Onsager-Kraichnan condensate with increasing point-vortex energy. Blue and green points indicate vortices that are clustered (links indicate the cluster), and green points show vortices that are paired with an anti-vortex to form a vortex dipole.-]
Changed lines 16-18 from:
[[http://prl.aps.org/abstract/PRL/v111/i23/e235301|Physical Review Letters '''111''', 235301 (2013)]] 

Fluids subjected to suitable forcing will exhibit turbulence, with characteristics strongly affected by the fluid’s physical properties and dimensionality. In this work, we explore two-dimensional (2D) quantum turbulence in an oblate Bose-Einstein condensate confined to an annular trapping potential. Experimentally, we find conditions for which small-scale stirring of the condensate generates disordered 2D vortex distributions that dissipatively evolve toward persistent currents, indicating energy transport from small to large length scales. Simulations of the experiment reveal spontaneous clustering of same-circulation vortices and an incompressible energy spectrum with k^(-5/3) dependence for low wave numbers k. This work links experimentally observed vortex dynamics with signatures of 2D turbulence in a compressible superfluid.
to:
[[http://dx.doi.org/10.1103/PhysRevLett.112.145301 |''Physical Review Letters'' '''112''', 145301 (2014)]] 

Despite the prominence of Onsager’s point-vortex model as a statistical description of 2D classical turbulence, a first-principles development of the model for a realistic superfluid has remained an open problem. Here we develop a mapping of a system of quantum vortices described by the homogeneous 2D Gross-Pitaevskii equation (GPE) to the point-vortex model, enabling Monte Carlo sampling of the vortex microcanonical ensemble. We use this approach to survey the full range of vortex states in a 2D superfluid, from the vortex-dipole gas at positive temperature to negative-temperature states exhibiting both macroscopic vortex clustering and kinetic energy condensation, which we term an Onsager-Kraichnan condensate (OKC). Damped GPE simulations reveal that such OKC states can emerge dynamically, via aggregation of small-scale clusters into giant OKC clusters, as the end states of decaying 2D quantum turbulence in a compressible, finite-temperature superfluid. These statistical equilibrium states should be accessible in atomic Bose-Einstein condensate experiments.
Changed line 20 from:
[-''December 2013.''-]
to:
[-''April 2014.''-]
May 23, 2014, at 11:20 AM by 139.80.236.40 -
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!'+Blakie Bradley Theory Group+'
to:
!'+Blakie-Bradley Theory Group+'
Changed lines 12-15 from:
>>rframe width=300px<<
!!! Onsager-Kraichnan condensation in decaying two-dimensional quantum turbulence
%thumb
width=300px% [[Highlights#okc|Attach:okc.png]] | [-Emergence of an Onsager-Kraichnan condensate with increasing point-vortex energy. Blue and green points indicate vortices that are clustered (links indicate the cluster), and green points show vortices that are paired with an anti-vortex to form a vortex dipole.-]
[[http://dx.doi.org/10.1103/PhysRevLett.112.145301 |''Physical Review Letters'' '''112''', 145301 (2014)]] 
to:
!! Characteristics of Two-Dimensional Quantum Turbulence in a Compressible Superfluid
>>rframe
width=250px<<
%thumb width=250px% Attach:2dqt.png | [-Development of Kolmogorov power-law in the incompressible kinetic energy spectrum of a forced, compressible superfluid.-]
Changed lines 16-18 from:
to:
[[http://prl.aps.org/abstract/PRL/v111/i23/e235301|Physical Review Letters '''111''', 235301 (2013)]] 

Fluids subjected to suitable forcing will exhibit turbulence, with characteristics strongly affected by the fluid’s physical properties and dimensionality. In this work, we explore two-dimensional (2D) quantum turbulence in an oblate Bose-Einstein condensate confined to an annular trapping potential. Experimentally, we find conditions for which small-scale stirring of the condensate generates disordered 2D vortex distributions that dissipatively evolve toward persistent currents, indicating energy transport from small to large length scales. Simulations of the experiment reveal spontaneous clustering of same-circulation vortices and an incompressible energy spectrum with k^(-5/3) dependence for low wave numbers k. This work links experimentally observed vortex dynamics with signatures of 2D turbulence in a compressible superfluid.
Changed line 20 from:
[-''April 2014.''-]
to:
[-''December 2013.''-]
May 23, 2014, at 11:20 AM by 139.80.236.40 -
May 23, 2014, at 11:16 AM by 139.80.236.40 -
Changed lines 12-14 from:
!! Onsager-Kraichnan condensation in decaying two-dimensional quantum turbulence
>>rframe width=350px<<
%thumb width=350px% Attach:okc.png | [-Emergence of an Onsager-Kraichnan condensate with increasing point-vortex energy. Blue and green points indicate vortices that are clustered (links indicate the cluster), and green points show vortices that are paired with an anti-vortex to form a vortex dipole.-]
to:
>>rframe width=300px<<
!!!
Onsager-Kraichnan condensation in decaying two-dimensional quantum turbulence
%thumb width=300px% [[Highlights#okc|Attach:okc.png]] | [-Emergence of an Onsager-Kraichnan condensate with increasing point-vortex energy. Blue and green points indicate vortices that are clustered (links indicate the cluster), and green points show vortices that are paired with an anti-vortex to form a vortex dipole.-]
[[http://dx.doi.org/10.1103/PhysRevLett.112.145301 |''Physical Review Letters'' '''112''', 145301 (2014)]] 
Changed lines 17-19 from:
[[http://dx.doi.org/10.1103/PhysRevLett.112.145301 |''Physical Review Letters'' '''112''', 145301 (2014)]] 

Despite the prominence of Onsager’s point-vortex model as a statistical description of 2D classical turbulence, a first-principles development of the model for a realistic superfluid has remained an open problem. Here we develop a mapping of a system of quantum vortices described by the homogeneous 2D Gross-Pitaevskii equation (GPE) to the point-vortex model, enabling Monte Carlo sampling of the vortex microcanonical ensemble. We use this approach to survey the full range of vortex states in a 2D superfluid, from the vortex-dipole gas at positive temperature to negative-temperature states exhibiting both macroscopic vortex clustering and kinetic energy condensation, which we term an Onsager-Kraichnan condensate (OKC). Damped GPE simulations reveal that such OKC states can emerge dynamically, via aggregation of small-scale clusters into giant OKC clusters, as the end states of decaying 2D quantum turbulence in a compressible, finite-temperature superfluid. These statistical equilibrium states should be accessible in atomic Bose-Einstein condensate experiments.
to:
May 12, 2014, at 09:46 AM by 139.80.236.40 -
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!! Characteristics of Two-Dimensional Quantum Turbulence in a Compressible Superfluid
>>rframe
width=250px<<
%thumb width=250px% Attach:2dqt.png | [-Development of Kolmogorov power-law in the incompressible kinetic energy spectrum of a forced, compressible superfluid.-]
to:
!! Onsager-Kraichnan condensation in decaying two-dimensional quantum turbulence
>>rframe
width=350px<<
%thumb width=350px% Attach:okc.png | [-Emergence of an Onsager-Kraichnan condensate with increasing point-vortex energy. Blue and green points indicate vortices that are clustered (links indicate the cluster), and green points show vortices that are paired with an anti-vortex to form a vortex dipole.-]
Changed lines 16-18 from:
[[http://prl.aps.org/abstract/PRL/v111/i23/e235301|Physical Review Letters '''111''', 235301 (2013)]] 

Fluids subjected to suitable forcing will exhibit turbulence, with characteristics strongly affected by the fluid’s physical properties and dimensionality. In this work, we explore two-dimensional (2D) quantum turbulence in an oblate Bose-Einstein condensate confined to an annular trapping potential. Experimentally, we find conditions for which small-scale stirring of the condensate generates disordered 2D vortex distributions that dissipatively evolve toward persistent currents, indicating energy transport from small to large length scales. Simulations of the experiment reveal spontaneous clustering of same-circulation vortices and an incompressible energy spectrum with k^(-5/3) dependence for low wave numbers k. This work links experimentally observed vortex dynamics with signatures of 2D turbulence in a compressible superfluid.
to:
[[http://dx.doi.org/10.1103/PhysRevLett.112.145301 |''Physical Review Letters'' '''112''', 145301 (2014)]] 

Despite the prominence of Onsager’s point-vortex model as a statistical description of 2D classical turbulence, a first-principles development of the model for a realistic superfluid has remained an open problem. Here we develop a mapping of a system of quantum vortices described by the homogeneous 2D Gross-Pitaevskii equation (GPE) to the point-vortex model, enabling Monte Carlo sampling of the vortex microcanonical ensemble. We use this approach to survey the full range of vortex states in a 2D superfluid, from the vortex-dipole gas at positive temperature to negative-temperature states exhibiting both macroscopic vortex clustering and kinetic energy condensation, which we term an Onsager-Kraichnan condensate (OKC). Damped GPE simulations reveal that such OKC states can emerge dynamically, via aggregation of small-scale clusters into giant OKC clusters, as the end states of decaying 2D quantum turbulence in a compressible, finite-temperature superfluid. These statistical equilibrium states should be accessible in atomic Bose-Einstein condensate experiments.
Changed line 20 from:
[-''December 2013.''-]
to:
[-''April 2014.''-]
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!'+Blakie-Bradley Theory Group+'
to:
!'+Blakie Bradley Theory Group+'
December 09, 2013, at 10:24 AM by 139.80.236.40 -
December 08, 2013, at 10:56 AM by 118.92.77.109 -
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[[http://link.aps.org/doi/10.1103/PhysRevLett.110.265302|Phys. Rev. Lett '''110''', 265302 (2013)]] \\
to:
[[http://link.aps.org/doi/10.1103/PhysRevLett.110.265302|Physical Review Letters '''110''', 265302 (2013)]] \\
December 06, 2013, at 09:33 AM by 139.80.236.40 -
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!! C-field theory
Our group is the home of ''c-field theory'' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our review article:

->[[http://dx.doi.org/10.1080/00018730802564254 | Attach:cfields.png]]%%
[[<<]]
Added lines 41-44:
----

\\

Deleted lines 54-62:

!! C-field theory
Our group is the home of ''c-field theory'' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our review article:

->[[http://dx.doi.org/10.1080/00018730802564254 | Attach:cfields.png]]%%
[[<<]]
\\

----
December 04, 2013, at 10:29 AM by 139.80.236.40 -
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to:
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!! Funding
to:
>>width=200px<<
%thumb width=200px% Attach:fund1.png
>><<

December 04, 2013, at 10:27 AM by 139.80.236.40 -
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!!Opportunities
to:
>>width=300px<<
%thumb width=300px% Attach:opp1.png
>><<
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December 04, 2013, at 10:04 AM by 139.80.236.40 -
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>><<
December 04, 2013, at 09:48 AM by 139.80.236.40 -
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Fluids subjected to suitable forcing will exhibit turbulence, with characteristics strongly affected by the fluid’s physical properties and dimensionality. In this work, we explore two-dimensional (2D) quantum turbulence in an oblate Bose-Einstein condensate confined to an annular trapping potential. Experimentally, we find conditions for which small-scale stirring of the condensate generates disordered 2D vortex distributions that dissipatively evolve toward persistent currents, indicating energy transport from small to large length scales. Simulations of the experiment reveal spontaneous clustering of same-circulation vortices and an incompressible energy spectrum with k-5/3 dependence for low wave numbers k. This work links experimentally observed vortex dynamics with signatures of 2D turbulence in a compressible superfluid.
to:
Fluids subjected to suitable forcing will exhibit turbulence, with characteristics strongly affected by the fluid’s physical properties and dimensionality. In this work, we explore two-dimensional (2D) quantum turbulence in an oblate Bose-Einstein condensate confined to an annular trapping potential. Experimentally, we find conditions for which small-scale stirring of the condensate generates disordered 2D vortex distributions that dissipatively evolve toward persistent currents, indicating energy transport from small to large length scales. Simulations of the experiment reveal spontaneous clustering of same-circulation vortices and an incompressible energy spectrum with k^(-5/3) dependence for low wave numbers k. This work links experimentally observed vortex dynamics with signatures of 2D turbulence in a compressible superfluid.
December 04, 2013, at 09:47 AM by 139.80.236.40 -
Added lines 8-18:

!! Characteristics of Two-Dimensional Quantum Turbulence in a Compressible Superfluid
>>rframe width=250px<<
%thumb width=250px% Attach:2dqt.png | [-Development of Kolmogorov power-law in the incompressible kinetic energy spectrum of a forced, compressible superfluid.-]
>><<
[[http://prl.aps.org/abstract/PRL/v111/i23/e235301|Physical Review Letters '''111''', 235301 (2013)]] 

Fluids subjected to suitable forcing will exhibit turbulence, with characteristics strongly affected by the fluid’s physical properties and dimensionality. In this work, we explore two-dimensional (2D) quantum turbulence in an oblate Bose-Einstein condensate confined to an annular trapping potential. Experimentally, we find conditions for which small-scale stirring of the condensate generates disordered 2D vortex distributions that dissipatively evolve toward persistent currents, indicating energy transport from small to large length scales. Simulations of the experiment reveal spontaneous clustering of same-circulation vortices and an incompressible energy spectrum with k-5/3 dependence for low wave numbers k. This work links experimentally observed vortex dynamics with signatures of 2D turbulence in a compressible superfluid.
[[<<]]
[-''December 2013.''-]
----
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!! Stochastic Projected Gross-Piteaveskii equation: the new testament

>>rframe
width=350px<<
%width=350px%[[http://link.aps.org/doi/10.1103/PhysRevA.86.053634 |Attach:proc.png ]]%% [-Energy and particle transfer mechanisms in Bose-Einstein condensate reservoir interactions: (a) Hamiltonian evolution of the c-field, (b) c-field growth (the time reverse also occurs causing loss), (c) energy transfer through number-conserving scattering.-]
to:
!! Fingerprinting Rotons in a Dipolar Condensate: Super-Poissonian Peak in the Atom-Number Fluctuations
>>rframe
width=250px<<
%thumb width=250px% Attach:frot.png | [-Detection regions for determining number fluctuations.-]
Changed lines 13-18 from:
\\
The celebrated Stochastic Gross-Pitaevskii equation has become a cornerstone
of finite-temperature many body theory for the ultra-cold Bose gas. Yet all applications so far have focused on the so-called ''growth'' interaction in the reservoir theory, involving incoherent particle exchange between the coherent and incoherent regions of phase-space. This treatment is appropriate when the system dynamics are not far from equilibrium.

In
this work we develop an algorithm for integrating the full stochastic ''projected'' Gross-Pitaevskii equation, including an additional reservoir interaction that involves coherent energy transfer between the coherent and incoherent regions (so-called ''scattering'' processes).

We give an overview of the numerical implementation of the deterministic and stochastic terms for
the scattering process, and use simulations of a condensate excited into a large amplitude breathing mode oscillation to characterize the importance of scattering and growth processes in an experimentally accessible regime. We find that in such non-equilibrium regimes the scattering can dominate over the growth, leading to qualitatively different system dynamics. In particular, the scattering causes the system to rapidly reach thermal equilibrium without greatly depleting the condensate, suggesting that it provides a highly coherent energy transfer mechanism.
to:
[[http://link.aps.org/doi/10.1103/PhysRevLett.110.265302|Phys. Rev. Lett '''110''', 265302 (2013)]] \\

We demonstrate that measurements
of atom-number fluctuations in a trapped dipolar condensate can reveal the presence of the elusive roton excitation. The key signature is a super-Poissonian peak in the fluctuations as the size of the measurement cell is varied, with the maximum occurring when the size is comparable to the roton wavelength. The magnitude of this roton feature is enhanced with temperature. The variation in fluctuations across the condensate demonstrates that the roton excitations are effectively confined to propagate in the densest central region, realizing a density trapped roton gas. While our main results are based on full numerical solutions of the mean-field equations, we also develop and validate a simple local density theory. Finally, we consider fluctuations measured within a washer-shaped cell which filters out the contribution of modes with nonzero angular momentum and provides a signal sensitive to individual roton modes.
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[-''October 2012.''-]
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to:
[-''Sept 2013.''-]
---- 
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!! Congratulations to Serge Haroche and David Wineland
>>rframe width=150px<<
%width=150%[[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html|Attach:nobel.jpg ]]%%
[-2012 Nobel Prize in Physics.-]
>><<
\\

The Nobel Prize in Physics 2012 was awarded jointly to Serge Haroche and David J. Wineland ''for ground-breaking experimental methods that enable measuring and manipulation of individual quantum systems''.

The teams led by Haroche and Wineland made major advances in realizing quantum phenomena.  To learn more about the prize, see the [[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html | Nobel Prize Press Release]].

The 2012 Nobel Prize recognizes significant [[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/advanced-physicsprize2012.pdf|scientific advances]] in Atomic, Molecular and Optical physics at the forefront of quantum mechanics research. To celebrate the award of the prize the American Physical Society have made a number of [[http://pra.aps.org/edannounce/2012-nobel-physics|key articles freely available]].

This field is also the focus of research at the [[http://www.physics.otago.ac.nz/jdc|Jack Dodd Centre for Quantum Technology]] at the University of Otago, and in 2009 Serge Haroche gave the [[http://www.royalsociety.org.nz/publications/reports/yearbooks/year2005/obituaries/john-dodd/|John Newton Dodd Lecture]] at Otago on his recent research in quantum optics. We offer our warmest congratulations to this year's Nobel Laureates for their ground-breaking research.
[[<<]]
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%width=180%[[http://www.physics.otago.ac.nz/finess/index.html|Attach:finess.png ]]%%
\\
BTG is involved in organising the
[[http://www.physics.otago.ac.nz/finess/index.html| Finite-Temperature Non-Equilibrium Superfluid Systems]] meeting, Queenstown, Feb. 2013.
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!'+Blakie Bradley Theory Group+'
to:
!'+Blakie-Bradley Theory Group+'
December 20, 2012, at 09:25 AM by 139.80.236.40 -
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December 20, 2012, at 09:25 AM by 139.80.236.40 -
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[[http://www.physics.otago.ac.nz/finess/index.html| Finite Temperature Non-Equilibrium Superfluid Systems]] meeting, Queenstown, Feb. 2013.
to:
[[http://www.physics.otago.ac.nz/finess/index.html| Finite-Temperature Non-Equilibrium Superfluid Systems]] meeting, Queenstown, Feb. 2013.
December 20, 2012, at 09:25 AM by 139.80.236.40 -
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[[http://www.physics.otago.ac.nz/finess/index.html| Finite Temperature Non-Equilibrium Superfluid Systems meeting, Queenstown, Feb. 2013.]]
to:
[[http://www.physics.otago.ac.nz/finess/index.html| Finite Temperature Non-Equilibrium Superfluid Systems]] meeting, Queenstown, Feb. 2013.
December 20, 2012, at 09:24 AM by 139.80.236.40 -
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[[http://www.physics.otago.ac.nz/finess/index.html| FINESS meeting in Queenstown in Feb. 2013.]]
to:
[[http://www.physics.otago.ac.nz/finess/index.html| Finite Temperature Non-Equilibrium Superfluid Systems meeting, Queenstown, Feb. 2013.]]
December 20, 2012, at 09:23 AM by 139.80.236.40 -
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!! Stochastic Projected Gross-Piteaveskii equation: the new testament

>>rframe width=350px<<
%width=350px%[[http://link.aps.org/doi/10.1103/PhysRevA.86.053634 |Attach:proc.png ]]%% [-Energy and particle transfer mechanisms in Bose-Einstein condensate reservoir interactions: (a) Hamiltonian evolution of the c-field, (b) c-field growth (the time reverse also occurs causing loss), (c) energy transfer through number-conserving scattering.-]
>><<
Changed lines 8-14 from:
The celebrated Stochastic Gross-Pitaevskii equation has become a cornerstone of finite-temperature many body theory for the ultra-cold Bose gas. Yet all applications so far have focused on the so-called ''growth'' interaction in the reservoir theory, involving incoherent particle exchange between the coherent and incoherent regions of phase-space. This treatment is appropriate when the system dynamics are not far from equilibrium.

In this work we develop an algorithm for integrating the full stochastic ''projected'' Gross-Pitaevskii equation, including an additional reservoir interaction that involves coherent energy transfer between the coherent and incoherent regions (so-called ''scattering'' processes).

We give an overview of the numerical implementation of the deterministic and stochastic terms for the scattering process, and use simulations of a condensate excited into a large amplitude breathing mode oscillation to characterize the importance of scattering and growth processes in an experimentally accessible regime. We find that in such non-equilibrium regimes the scattering can dominate over the growth, leading to qualitatively different system dynamics. In particular, the scattering causes the system to rapidly reach thermal equilibrium without greatly depleting the condensate, suggesting that it provides a highly coherent energy transfer mechanism.
[[<<
]]
[-''October 2012.''-
]
to:

%width=180%[[http://www.physics.otago.ac.nz/finess/index.html|Attach:finess.png ]]%%
\\
BTG is involved in organising the
[[http://www.physics.otago.ac.nz/finess/index.html| FINESS meeting in Queenstown in Feb. 2013
.]]
Deleted lines 13-17:
!! Congratulations to Serge Haroche and David Wineland
>>rframe width=150px<<
%width=150%[[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html|Attach:nobel.jpg ]]%%
[-2012 Nobel Prize in Physics.-]
>><<
Changed lines 15-25 from:

The Nobel Prize in Physics 2012 was awarded jointly to Serge Haroche and David J. Wineland ''for ground-breaking experimental methods that enable measuring and manipulation of individual quantum systems''.

The teams led by Haroche and Wineland made major advances in realizing quantum phenomena.  To learn more about the prize, see the [[http://www
.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html | Nobel Prize Press Release]].

The 2012 Nobel Prize recognizes significant [[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/advanced-physicsprize2012.pdf|scientific advances]] in Atomic, Molecular and Optical physics at the forefront of quantum mechanics research. To celebrate the award of the prize the American Physical Society have made a number of [[http://pra.aps.org/edannounce/2012-nobel-physics|key articles freely available]].

This field is also the focus of research at the [[http://www.physics.otago.ac.nz/jdc|Jack Dodd Centre for Quantum Technology]] at the University of Otago, and in 2009 Serge Haroche gave the [[http://www.royalsociety.org.nz/publications/reports/yearbooks/year2005/obituaries/john-dodd/|John Newton Dodd Lecture]] at Otago on his recent research in quantum optics. We offer our warmest congratulations to this year's Nobel Laureates for their ground-breaking research.
[[
<<]]
----

to:
!! Stochastic Projected Gross-Piteaveskii equation: the new testament

>>rframe width=350px<<
%width=350px%[[http://link
.aps.org/doi/10.1103/PhysRevA.86.053634 |Attach:proc.png ]]%% [-Energy and particle transfer mechanisms in Bose-Einstein condensate reservoir interactions: (a) Hamiltonian evolution of the c-field, (b) c-field growth (the time reverse also occurs causing loss), (c) energy transfer through number-conserving scattering.-]
>><<
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%width=180%[[http://www.physics.otago.ac.nz/finess/index.html|Attach:finess.png
]]%%
to:
The celebrated Stochastic Gross-Pitaevskii equation has become a cornerstone of finite-temperature many body theory for the ultra-cold Bose gas. Yet all applications so far have focused on the so-called ''growth'' interaction in the reservoir theory, involving incoherent particle exchange between the coherent and incoherent regions of phase-space. This treatment is appropriate when the system dynamics are not far from equilibrium.

In this work we develop an algorithm for integrating the full stochastic ''projected'' Gross-Pitaevskii equation, including an additional reservoir interaction that involves coherent energy transfer between the coherent and incoherent regions (so-called ''scattering'' processes).

We give an overview of the numerical implementation of the deterministic and stochastic terms for the scattering process, and use simulations of a condensate excited into a large amplitude breathing mode oscillation to characterize the importance of scattering and growth processes in an experimentally accessible regime. We find that in such non-equilibrium regimes the scattering can dominate over the growth, leading to qualitatively different system dynamics. In particular, the scattering causes the system to rapidly reach thermal equilibrium without greatly depleting the condensate, suggesting that it provides a highly coherent energy transfer mechanism.
[[<<
]]
[-''October 2012.''-]
----
!! Congratulations to Serge Haroche and David Wineland
>>rframe width=150px<<
%width=150%[[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html|Attach:nobel.jpg ]]%%
[-2012 Nobel Prize in Physics.-]
>><<
Changed lines 35-36 from:
BTG is involved in organising the FINESS meeting in Queenstown in Feb. 2013. Website just launched here:
[[http://www.physics.otago.ac.nz/finess/index.html| FINESS
-2013]]
to:

The Nobel Prize
in Physics 2012 was awarded jointly to Serge Haroche and David J. Wineland ''for ground-breaking experimental methods that enable measuring and manipulation of individual quantum systems''.

The teams led by Haroche and Wineland made major advances in realizing quantum phenomena.  To learn more about the prize, see the [[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html | Nobel Prize Press Release
]].

The 2012 Nobel Prize recognizes significant [[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/advanced-physicsprize2012.pdf|scientific advances]] in Atomic, Molecular and Optical physics at the forefront of quantum mechanics research. To celebrate the award of the prize the American Physical Society have made a number of [[http://pra.aps.org/edannounce/2012-nobel-physics|key articles freely available]].

This field is also the focus of research at the [[http://www.physics.otago.ac.nz/jdc|Jack Dodd Centre for Quantum Technology]] at the University of Otago, and in 2009 Serge Haroche gave the [[http://www.royalsociety.org.nz/publications/reports/yearbooks/year2005/obituaries/john-dodd/|John Newton Dodd Lecture]] at Otago on his recent research in quantum optics. We offer our warmest congratulations to this year's Nobel Laureates for their ground-breaking research.
[[<<]]
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%width=350px%[[http://arxiv.org/abs/1210.0952 |Attach:proc.png ]]%% [-Energy and particle transfer mechanisms in Bose-Einstein condensate reservoir interactions: (a) Hamiltonian evolution of the c-field, (b) c-field growth (the time reverse also occurs causing loss), (c) energy transfer through number-conserving scattering.-]
to:
%width=350px%[[http://link.aps.org/doi/10.1103/PhysRevA.86.053634 |Attach:proc.png ]]%% [-Energy and particle transfer mechanisms in Bose-Einstein condensate reservoir interactions: (a) Hamiltonian evolution of the c-field, (b) c-field growth (the time reverse also occurs causing loss), (c) energy transfer through number-conserving scattering.-]
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%width=350px%[[http://arxiv.org/abs/1210.0952 |Attach:proc.png ]]%% [-Energy and particle transfer mechanisms in Bose-Einstein condensate reservoir interactions: (a) Hamiltonian evolution of the c-field, (b) c-field growth (the time reverse also occurs causing loss), (c) energy transfer through number-conserving scattering.-]
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The celebrated Stochastic Gross-Pitaevskii equation has become a cornerstone of finite-temperature many body theory for the ultra-cold Bose gas. Yet all applications so far have focused on the so-called ''growth'' interaction in the reservoir theory, involving incoherent particle exchange between the coherent and incoherent regions of phase-space.
to:
The celebrated Stochastic Gross-Pitaevskii equation has become a cornerstone of finite-temperature many body theory for the ultra-cold Bose gas. Yet all applications so far have focused on the so-called ''growth'' interaction in the reservoir theory, involving incoherent particle exchange between the coherent and incoherent regions of phase-space. This treatment is appropriate when the system dynamics are not far from equilibrium.
October 25, 2012, at 02:17 PM by 139.80.236.40 -
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%width=350px%[[http://arxiv.org/abs/1210.0952 |Attach:proc.png ]]%% [-Energy and particle transfer mechanisms in Bose-Einstein condensate reservoir interactions.-]
October 25, 2012, at 02:13 PM by 139.80.236.40 -
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%thumb width=350px%[[Highlights#spgpe |Attach:proc.png ]] | [-Energy and particle transfer mechanisms in Bose-Einstein condensate reservoir interactions.-]
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%thumb width=350px%[[Highlights#spgpe |Attach:proc.png ]]%% | [-Energy and particle transfer mechanisms in Bose-Einstein condensate reservoir interactions.-]
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We have achieved the first full implementation of the stochastic projected Gross-Pitaevskii equation for a three-dimensional trapped Bose gas at finite temperature. Our work advances previous applications of this theory, which have only included growth processes, by implementing number-conserving scattering processes. We evaluate an analytic expression for the coefficient of the scattering term and compare it to that of the growth term in the experimental regime, showing the two coefficients are comparable in size. We give an overview of the numerical implementation of the deterministic and stochastic terms for the scattering process, and use simulations of a condensate excited into a large amplitude breathing mode oscillation to characterize the importance of scattering and growth processes in an experimentally accessible regime. We find that in such non-equilibrium regimes the scattering can dominate over the growth, leading to qualitatively different system dynamics. In particular, the scattering causes the system to rapidly reach thermal equilibrium without greatly depleting the condensate, suggesting that it provides a highly coherent energy transfer mechanism.
to:
We give an overview of the numerical implementation of the deterministic and stochastic terms for the scattering process, and use simulations of a condensate excited into a large amplitude breathing mode oscillation to characterize the importance of scattering and growth processes in an experimentally accessible regime. We find that in such non-equilibrium regimes the scattering can dominate over the growth, leading to qualitatively different system dynamics. In particular, the scattering causes the system to rapidly reach thermal equilibrium without greatly depleting the condensate, suggesting that it provides a highly coherent energy transfer mechanism.
October 25, 2012, at 02:10 PM by 139.80.236.40 -
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%thumb width=350px%[[Highlights#spgpe |Attach:proc.png]] | [-Energy and particle transfer mechanisms in Bose-Einstein condensate reservoir interactions.-]
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The celebrated Stochastic Gross-Pitaevskii equation has become a cornerstone of finite-temperature many body theory for the ultra-cold Bose gas. 
\\
[[#spgpe]]
!! The stochastic projected Gross-Pitaevskii equation
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[[http://arxiv.org/abs/1210.0952| arXiv preprint]]\\
to:
\\
The celebrated Stochastic Gross-Pitaevskii equation has become a cornerstone of finite-temperature many body theory for the ultra-cold Bose gas. Yet all applications so far have focused on the so-called ''growth'' interaction in the reservoir theory, involving incoherent particle exchange between the coherent and incoherent regions of phase-space.

In this work we develop an algorithm for integrating the full stochastic ''projected'' Gross-Pitaevskii equation, including an additional reservoir interaction that involves coherent energy transfer between the coherent and incoherent regions (so-called ''scattering'' processes).
October 25, 2012, at 01:59 PM by 139.80.236.40 -
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->%width=180%[[Highlights#spgpe |Attach:clustering.png ]]%%
to:
\\
[[#spgpe]]
!! The stochastic projected Gross-Pitaevskii equation
>>rframe width=350px<<
%thumb width=350px% Attach:proc.png | [-Energy and particle transfer mechanisms in Bose-Einstein condensate reservoir interactions.-]
>><<
[[http://arxiv.org/abs/1210.0952| arXiv preprint]]\\


We have achieved the first full implementation of the stochastic projected Gross-Pitaevskii equation for a three-dimensional trapped Bose gas at finite temperature. Our work advances previous applications of this theory, which have only included growth processes, by implementing number-conserving scattering processes. We evaluate an analytic expression for the coefficient of the scattering term and compare it to that of the growth term in the experimental regime, showing the two coefficients are comparable in size. We give an overview of the numerical implementation of the deterministic and stochastic terms for the scattering process, and use simulations of a condensate excited into a large amplitude breathing mode oscillation to characterize the importance of scattering and growth processes in an experimentally accessible regime. We find that in such non-equilibrium regimes the scattering can dominate over the growth, leading to qualitatively different system dynamics. In particular, the scattering causes the system to rapidly reach thermal equilibrium without greatly depleting the condensate, suggesting that it provides a highly coherent energy transfer mechanism.
[[<<]]
[-''October 2012.''-]
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----

!! Stochastic Projected Gross-Piteaveskii equation: the new testament
The celebrated Stochastic Gross-Pitaevskii equation has become a cornerstone of finite-temperature many body theory for the ultra-cold Bose gas. 
->%width=180%[[Highlights#spgpe |Attach:clustering.png ]]%%
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This field is also the focus of research at the [[http://www.physics.otago.ac.nz/jdc|Jack Dodd Center for Quantum Technology]] at the University of Otago, and in 2009 Serge Haroche gave the [[http://www.royalsociety.org.nz/publications/reports/yearbooks/year2005/obituaries/john-dodd/|John Newton Dodd Lecture]] at Otago on his recent research in quantum optics. We offer our warmest congratulations to this year's Nobel Laureates for their ground-breaking research.
to:
This field is also the focus of research at the [[http://www.physics.otago.ac.nz/jdc|Jack Dodd Centre for Quantum Technology]] at the University of Otago, and in 2009 Serge Haroche gave the [[http://www.royalsociety.org.nz/publications/reports/yearbooks/year2005/obituaries/john-dodd/|John Newton Dodd Lecture]] at Otago on his recent research in quantum optics. We offer our warmest congratulations to this year's Nobel Laureates for their ground-breaking research.
October 19, 2012, at 12:01 PM by 139.80.236.40 -
Changed line 21 from:
This field is also the focus of research at the [[http://www.physics.otago.ac.nz/jdc|Jack Dodd Center for Quantum Technology]] at the University of Otago, and in 2009 Serge Haroche gave the [[http://www.royalsociety.org.nz/publications/reports/yearbooks/year2005/obituaries/john-dodd/|John Newton Dodd Lecture]] at Otago on his recent research in quantum optics. We offer our warmest congratulations to this year's Nobel Laureates for their ground breaking research.
to:
This field is also the focus of research at the [[http://www.physics.otago.ac.nz/jdc|Jack Dodd Center for Quantum Technology]] at the University of Otago, and in 2009 Serge Haroche gave the [[http://www.royalsociety.org.nz/publications/reports/yearbooks/year2005/obituaries/john-dodd/|John Newton Dodd Lecture]] at Otago on his recent research in quantum optics. We offer our warmest congratulations to this year's Nobel Laureates for their ground-breaking research.
October 19, 2012, at 11:59 AM by 139.80.236.40 -
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%thumb width=150px% Attach:nobel.jpg | [-2012 Nobel Prize in Physics.-]
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[-2012 Nobel Prize in Physics.-]
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October 19, 2012, at 11:55 AM by 139.80.236.40 -
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The Nobel Prize in Physics 2012 was awarded jointly to Serge Haroche and David J. Wineland "for ground-breaking experimental methods that enable measuring and manipulation of individual quantum systems".
to:
The Nobel Prize in Physics 2012 was awarded jointly to Serge Haroche and David J. Wineland ''for ground-breaking experimental methods that enable measuring and manipulation of individual quantum systems''.
October 19, 2012, at 11:55 AM by 139.80.236.40 -
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This field is also the focus of research at the [[Jack Dodd Center for Quantum Technology|http://www.physics.otago.ac.nz/jdc]] at the University of Otago, and in 2009 Serge Haroche gave the [[http://www.royalsociety.org.nz/publications/reports/yearbooks/year2005/obituaries/john-dodd/|John Newton Dodd Lecture]] at Otago on his recent research in quantum optics. We offer our warmest congratulations to this year's Nobel Laureates for their ground breaking research.
to:
This field is also the focus of research at the [[http://www.physics.otago.ac.nz/jdc|Jack Dodd Center for Quantum Technology]] at the University of Otago, and in 2009 Serge Haroche gave the [[http://www.royalsociety.org.nz/publications/reports/yearbooks/year2005/obituaries/john-dodd/|John Newton Dodd Lecture]] at Otago on his recent research in quantum optics. We offer our warmest congratulations to this year's Nobel Laureates for their ground breaking research.
October 19, 2012, at 11:54 AM by 139.80.236.40 -
Changed lines 17-19 from:
The 2012 Nobel Prize recognizes significant scientific advances in Atomic, Molecular and Optical physics at the forefront of quantum mechanics research. To celebrate the award of the prize the American Physical Society have made a number of key articles freely available.

This field is also the focus of research at the Jack Dodd Center for Quantum Technology at the University of Otago, and in 2009 Serge Haroche gave the John Newton Dodd Lecture
at Otago on his recent research in quantum optics. We offer our warmest congratulations to this year's Nobel Laureates for their ground breaking research.
to:
The 2012 Nobel Prize recognizes significant [[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/advanced-physicsprize2012.pdf|scientific advances]] in Atomic, Molecular and Optical physics at the forefront of quantum mechanics research. To celebrate the award of the prize the American Physical Society have made a number of [[http://pra.aps.org/edannounce/2012-nobel-physics|key articles freely available]].

This field is also the focus of research at the [[Jack Dodd Center for Quantum Technology|http://www.physics.otago.ac.nz/jdc]] at the University of Otago, and in 2009 Serge Haroche gave the [[http://www.royalsociety.org.nz/publications/reports/yearbooks/year2005/obituaries/john-dodd/|John Newton Dodd Lecture]]
at Otago on his recent research in quantum optics. We offer our warmest congratulations to this year's Nobel Laureates for their ground breaking research.
October 19, 2012, at 11:52 AM by 139.80.236.40 -
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[[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html | Nobel Prize Press Release]]\\
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\\
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The teams led by Haroche and Wineland made major advances in realizing quantum phenomena.  To learn more about the prize, see the press release from the Nobel Foundation.
to:
The teams led by Haroche and Wineland made major advances in realizing quantum phenomena.  To learn more about the prize, see the [[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html | Nobel Prize Press Release]].
October 19, 2012, at 11:51 AM by 139.80.236.40 -
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We have achieved the first full implementation of the stochastic projected Gross-Pitaevskii equation for a three-dimensional trapped Bose gas at finite temperature. Our work advances previous applications of this theory, which have only included growth processes, by implementing number-conserving scattering processes. We evaluate an analytic expression for
the coefficient of the scattering term and compare it to that of the growth term in the experimental regime, showing the two coefficients are comparable in size. We give an overview of the numerical implementation of the deterministic and stochastic terms for the scattering process, and use simulations of a condensate excited into a large amplitude breathing mode oscillation to characterize the importance of scattering and growth processes in an experimentally accessible regime. We find that in such non-equilibrium regimes the scattering can dominate over the growth, leading to qualitatively different system dynamics. In particular, the scattering causes the system to rapidly reach thermal equilibrium without greatly depleting the condensate, suggesting that it provides a highly coherent energy transfer mechanism.
to:
The Nobel Prize in Physics 2012 was awarded jointly to Serge Haroche and David J. Wineland "for ground-breaking experimental methods that enable measuring and manipulation of individual quantum systems".

The teams led by Haroche and Wineland made major advances in realizing quantum phenomena.  To learn more about
the prize, see the press release from the Nobel Foundation.

The 2012 Nobel Prize recognizes significant scientific advances in Atomic
, Molecular and Optical physics at the forefront of quantum mechanics research. To celebrate the award of the prize the American Physical Society have made a number of key articles freely available.

This field is also the focus of research at the Jack Dodd Center for Quantum Technology at the University of Otago, and in 2009 Serge Haroche gave the John Newton Dodd Lecture at Otago on his recent research in quantum optics. We offer our warmest congratulations to this year's Nobel Laureates for their ground breaking research
.
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%thumb width=150px% Attach:nobel.jpg | [-2012 Nobel Prize in Physics.-]
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[[http://arxiv.org/abs/1210.0952| arXiv preprint]]\\

to:
[[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html | Nobel Prize Press Release]]\\

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[-''October 2012.''-]
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!!Congratulations to Serge Haroche and David Wineland
%frame width=150% [[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html | Attach:nobel.jpg]]%%
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%thumb width=150px% [[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.htm lAttach:nobel.jpg | [-2012 Nobel Prize in Physics.-]
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%thumb width=150px% [[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.htm lAttach:nobel.jpg]]
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!! Congratulations to Serge Haroche and David Wineland
>>rframe width=150px<<
%thumb width=150px% [[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.htm lAttach:nobel.jpg | [-2012 Nobel Prize in Physics.-]
>><<
[[http://arxiv.org/abs/1210.0952| arXiv preprint]]\\


We have achieved the first full implementation of the stochastic projected Gross-Pitaevskii equation for a three-dimensional trapped Bose gas at finite temperature. Our work advances previous applications of this theory, which have only included growth processes, by implementing number-conserving scattering processes. We evaluate an analytic expression for the coefficient of the scattering term and compare it to that of the growth term in the experimental regime, showing the two coefficients are comparable in size. We give an overview of the numerical implementation of the deterministic and stochastic terms for the scattering process, and use simulations of a condensate excited into a large amplitude breathing mode oscillation to characterize the importance of scattering and growth processes in an experimentally accessible regime. We find that in such non-equilibrium regimes the scattering can dominate over the growth, leading to qualitatively different system dynamics. In particular, the scattering causes the system to rapidly reach thermal equilibrium without greatly depleting the condensate, suggesting that it provides a highly coherent energy transfer mechanism.
[[<<]]
[-''October 2012.''-]
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->
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\\
October 19, 2012, at 11:36 AM by 139.80.236.40 -
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->%lframe width=150% [[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html | Attach:nobel.jpg]]%%
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[[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html| 2012 Physics Nobel Laureates]].%%
->
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!!Congratulations to Serge Haroche and David Wineland\\ 
to:
!!Congratulations to Serge Haroche and David Wineland
\\
October 19, 2012, at 11:33 AM by 139.80.236.40 -
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[[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html| !!2012 Physics Nobel Laureates]].%%
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[[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html| 2012 Physics Nobel Laureates]].%%
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!!Congratulations to Serge Haroche and David Wineland, the
[[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html| 2012 Physics Nobel Laureates]].%%
to:
!!Congratulations to Serge Haroche and David Wineland\\
[[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html| !!2012 Physics Nobel Laureates]].%%
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[[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html| 2012 Physics Nobel Laureates]].!!%%
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[[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html| 2012 Physics Nobel Laureates]].%%
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Congratulations to Serge Haroche and David Wineland, the
[[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html| 2012 Physics Nobel Laureates]].%%
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!!Congratulations to Serge Haroche and David Wineland, the
[[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html| 2012 Physics Nobel Laureates]].!!%%
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Congratulations to Serge Haroche and David Wineland, the 2012 Physics Nobel Laureates.
%width=100%
[[http://www.physics.otago.ac.nz/2012-nobel-prize-physics-awarded|Attach:nobel.png ]]%%
to:
Congratulations to Serge Haroche and David Wineland, the
[[http://www.nobelprize.org/nobel_prizes/physics/laureates/2012/press.html| 2012 Physics Nobel Laureates]].%%
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Our group is interested in a wide range of quantum phenomenon that can be explored using ultra-cold gases and quantum optical systems. We are part of the [[http://www.physics.otago.ac.nz/nx/jdc/home-page.html | Jack-Dodd Centre for Quantum Technology]] at the [[http://www.physics.otago.ac.nz/ | Physics Department]] of the [[http://www.otago.ac.nz/ | University of Otago]].
to:
Our group is interested in a wide range of quantum phenomenon that can be explored using ultra-cold gases and quantum optical systems. We are part of the [[http://www.physics.otago.ac.nz/nx/jdc/home-page.html | Jack-Dodd Centre for Quantum Technology]] at the [[http://www.physics.otago.ac.nz/ | Physics Department]] of the [[http://www.otago.ac.nz/ | University of Otago]].%%
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October 19, 2012, at 11:28 AM by 139.80.236.40 -
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\\
----
Congratulations to Serge Haroche and David Wineland, the 2012 Physics Nobel Laureates.
%width=100%[[http://www.physics.otago.ac.nz/2012-nobel-prize-physics-awarded|Attach:nobel.png ]]%%
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!'+Blakie Bradley Theory Group+'
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!'+Blakie-Bradley Theory Group+'
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Our group is the home of ''c-field theory'' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review article 
to:
Our group is the home of ''c-field theory'' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our review article:
May 03, 2012, at 05:02 PM by 139.80.236.34 -
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->% width=200%[[http://dx.doi.org/10.1080/00018730802564254 | Attach:cfields.png]]%%
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->[[http://dx.doi.org/10.1080/00018730802564254 | Attach:cfields.png]]%%
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\\
May 03, 2012, at 04:54 PM by 139.80.236.34 -
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!!FINESS-2013
to:
->%width=180%[[Attach:finess.png ]]%%
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[[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities| PhD scholarships are available for PhD students wanting to work in our group.]]
to:
[[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities| PhD scholarships are available for students wanting to work in our group.]]
April 19, 2012, at 09:35 AM by 139.80.236.34 -
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!!FINESS-2013
BTG is involved in organising the FINESS meeting in Queenstown in Feb. 2013. Website just launched here:
[[http://www.physics.otago.ac.nz/finess/index.html| FINESS-2013]]


\\

----
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February 24, 2012, at 09:06 AM by 139.80.236.34 -
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!'+Blakie Bradley Theory Group+'
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!'+Blakie-Bradley Theory Group+'
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Welcome to our group home page
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Welcome to our group home page.
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(one of the [[http://www.tandfonline.com/action/showMostReadArticles?journalCode=tadp20|most read]] articles of Advances in Physics).
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(one of the [[http://www.tandfonline.com/action/showMostReadArticles?journalCode=tadp20|most read]] articles of Advances in Physics).
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[[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities| PhD scholarships are available for students wanting to work in our group.]]
to:
[[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities| PhD scholarships are available for PhD students wanting to work in our group.]]
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\\
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!!Opportunities
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\\
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[[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities| PhD scholarships are available for students students wanting to work in our group.]]
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[[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities| PhD scholarships are available for students wanting to work in our group.]]
November 19, 2011, at 09:12 AM by 139.80.236.34 -
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We are currently recruiting [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities| students]]
to join our
group.
to:
[[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities| PhD scholarships are available for students students wanting to work in our group.]]
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We are currently recruiting [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities| Students]]
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We are currently recruiting [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities| students]]
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We are currently seeking [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities|PhD Students]]
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We are currently recruiting [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities| Students]]
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We are currently seeking
!!!! [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities|PhD Students]]
to:
We are currently seeking [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities|PhD Students]]
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and a
!!!!  [[https://otago.taleo.net/careersection/2/jobdetail.ftl?lang=en&job=1100447|Postdoc Research Fellow]]
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to join our group.
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!!!! [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities|PhD Students wanted]]
!!!!  [[https://otago.taleo.net/careersection/2/jobdetail.ftl?lang=en&job=1100447|Postdoc wanted]]
to:
We are currently seeking
!!!! [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities|PhD Students]]
and a
!!!!  [[https://otago.taleo.net/careersection/2/jobdetail.ftl?lang=en&job=1100447|Postdoc Research Fellow]]
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!!!! [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities|!PhD Students wanted!]]
!!!!  [[https://otago.taleo.net/careersection/2/jobdetail.ftl?lang=en&job=1100447|!Postdoc wanted!]]
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!!!! [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities|PhD Students wanted]]
!!!!  [[https://otago.taleo.net/careersection/2/jobdetail.ftl?lang=en&job=1100447|Postdoc wanted]]
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!!!! [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities|!PhD Students wanted!]]
!!!!  [[https://otago.taleo.net/careersection/2/jobdetail.ftl?lang=en&job=1100447|!Postdoc wanted!]]
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!!!! [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities|PhD Students wanted]]
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!!!! [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities|PhD Students wanted]].
!!!!  [[https://otago.taleo.net/careersection/2/jobdetail.ftl?lang=en&job=1100447|Postdoc wanted]].
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!!! PhD Students wanted -find more information  [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities|here]].
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!!! [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities|PhD Students wanted]].
!!!  [[https://otago.taleo.net/careersection/2/jobdetail.ftl?lang=en&job=1100447|Postdoc wanted]].
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!!! PhD Students wanted! Go [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities|here]] for more information.
!!! Postdoc wanted! Go [[https://otago.taleo.net/careersection/2/jobdetail.ftl?lang=en&job=1100447|here]] for more information.
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!!! PhD Students wanted -find more information  [[http://www.physics.otago.ac.nz/research/btg/Site/Opportunities|here]].
!!! Postdoc wanted -find more information [[https://otago.taleo.net/careersection/2/jobdetail.ftl?lang=en&job=1100447|here]].
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!!! PhD Students wanted! Go [[|here]] for more information.
!!! Postdoc wanted! Go [[https://otago.taleo.net/careersection/2/jobdetail.ftl?lang=en&job=1100447|here]] for more information.

\\

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Our group is interested in a wide range of quantum phenomenon that can be explored using ultra-cold gases and quantum optical systems. We are part of the [[http://www.physics.otago.ac.nz/nx/jdc/home-page.html | Jack-Dodd center for Quantum Technology]] at the [[http://www.physics.otago.ac.nz/ | Physics Department]] of the [[http://www.otago.ac.nz/ | University of Otago]].
to:
Our group is interested in a wide range of quantum phenomenon that can be explored using ultra-cold gases and quantum optical systems. We are part of the [[http://www.physics.otago.ac.nz/nx/jdc/home-page.html | Jack-Dodd Centre for Quantum Technology]] at the [[http://www.physics.otago.ac.nz/ | Physics Department]] of the [[http://www.otago.ac.nz/ | University of Otago]].
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!! C-field theory
Our group is the home of ''c-field theory'' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review article

->%lframe%[[http://dx.doi.org/10.1080/00018730802564254 | Attach:cfields.png]]%%
[[<<]]
\\

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!! C-field theory
Our group is the home of ''c-field theory'' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review article

->%lframe%[[http://dx.doi.org/10.1080/00018730802564254 | Attach:cfields.png]]%%
[[<<]]
\\
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Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review article
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Our group is the home of ''c-field theory'' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review article
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----
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! Latest News
%rframe width=130px% Attach:andrew.jpg
!! Dr Martin arrives

Dr Andrew Martin has arrived from the University of Southampton to start a postdoc position with Blair studying dipolar systems.
[[<<]]
[-''Nov. 2010.''-]
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!'+Blakie Bradley Theory Group+'
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!! C-field theory
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! C-field theory
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%rframe width=130px% Attach:andrew.jpg
!! Dr Martin arrives

Dr Andrew Martin has arrived from the University of Southampton to start a postdoc position with Blair studying dipolar systems.
[[<<]]
[-''Nov. 2010.''-]
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! Latest News
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!! Latest News

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Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review article [[<<]]
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Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review article
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published in Advances in Physics.
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Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review article
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Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review article [[<<]]
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Our group is interested in a wide range of quantum phenomenon that can be explored using ultra-cold gases and quantum optical systems. We are part of the [[http://www.physics.otago.ac.nz/nx/jdc/home-page.html | Jack-Dodd center for Quantum Technology]] at the [[Physics Department | http://www.physics.otago.ac.nz/]] of the [[University of Otago | http://www.otago.ac.nz/]].
to:
Our group is interested in a wide range of quantum phenomenon that can be explored using ultra-cold gases and quantum optical systems. We are part of the [[http://www.physics.otago.ac.nz/nx/jdc/home-page.html | Jack-Dodd center for Quantum Technology]] at the [[http://www.physics.otago.ac.nz/ | Physics Department]] of the [[http://www.otago.ac.nz/ | University of Otago]].
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Our group is interested in a wide range of quantum phenomenon that can be explored using ultra-cold gases and quantum optical systems. We are part of the Jack-Dodd center for Quantum Technology at the Physics Department of the University of Otago.
to:
Our group is interested in a wide range of quantum phenomenon that can be explored using ultra-cold gases and quantum optical systems. We are part of the [[http://www.physics.otago.ac.nz/nx/jdc/home-page.html | Jack-Dodd center for Quantum Technology]] at the [[Physics Department | http://www.physics.otago.ac.nz/]] of the [[University of Otago | http://www.otago.ac.nz/]].
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->%lframe%[[http://dx.doi.org/10.1080/00018730802564254 | Attach:cfields.png]]%%
published in Advances in Physics.
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published in Advances in Physics.
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We gratefully acknowledge financial support from:

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published in Advances in Physics.
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!! Funding
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!! Funding
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\\!! Funding
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!! Funding
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!! Funding

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\\!! Funding
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!! Funding

(:table width=75% align=center border=2 cellpadding=10 style='background-image: url([=http://www.pmwiki.org/pmwiki/uploads/Test/clouds.jpg=])':) (:cell valign=top:)
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Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review article %
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Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review article
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Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review article

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Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review article %

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!! Funding
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Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review in
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Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review article
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Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review

http://www.physics.otago.ac.nz/research/btg/pmwiki/pub/skins/lean/cfields.pdf

in 
to:
Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review in 
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Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review in 
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Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review

http://http://www.physics.otago.ac.nz/research/btg/pmwiki/pub/skins/lean/cfields.pdf

in 
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Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review in  [[http://dx.doi.org/10.1080/00018730802564254 |Advances in Physics]].

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Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review in 
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http://pmichaud.com/img/misc/pc.jpg"Paper clips" | [- %newwin% [[
Wikipedia:Paper_clips | Paper clips ]] are ''fun'' to work with. -]

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http://pmichaud.com/img/misc/pc.jpg"Paper clips" | [- %newwin% [[
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Our group is the home of ~c-field theory~: a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review in  [[http://dx.doi.org/10.1080/00018730802564254 |Advances in Physics]].
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Our group is the home of '~c-field theory~' a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review in  [[http://dx.doi.org/10.1080/00018730802564254 |Advances in Physics]].
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Our group is the home of c-field theory: a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review in  [[http://dx.doi.org/10.1080/00018730802564254 |Advances in Physics]].
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Our group is the home of ~c-field theory~: a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review in  [[http://dx.doi.org/10.1080/00018730802564254 |Advances in Physics]].
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!! C-field theory
Our group is the home of c-field theory: a flexible, tractable theory for describing quantum and thermal dynamics of ultra-cold Bose gases. Find out more in our recent review in  [[http://dx.doi.org/10.1080/00018730802564254 |Advances in Physics]].
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!!'+Blakie Bradley Theory Group+'
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!!! Blakie Bradley Theory Group
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!! Welcome to our group homepage
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!! Blakie Bradley Theory Group

Welcome to our group home page
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!! Welcome to our group homepage
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Welcome to our group homepage
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Welcome to PmWiki!

A local copy of PmWiki's
documentation has been installed along with the software,
and is available via the [[PmWiki/documentation index]]. 

To continue setting up PmWiki, see [[PmWiki/initial setup tasks]].

The [[PmWiki/basic editing]] page describes how to create pages
in PmWiki.  You can practice editing in the [[wiki sandbox]].

More information about PmWiki is available from http://www.pmwiki.org
.
to:
Welcome to our group homepage

Our group is interested in a wide range of quantum phenomenon that can be explored using ultra-cold gases and quantum optical systems. We are part of the Jack-Dodd center for Quantum Technology at the Physics Department of the University of Otago
.
Recent Changes (All) | Edit SideBar Page last modified on November 28, 2018, at 08:07 PM Edit Page | Page History
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