Simula Tapio, Davis Matthew J, Helmerson Kristian
School of Physics, Monash University, Victoria 3800, Australia.
School of Mathematics and Physics, University of Queensland, Queensland 4072, Australia.
Phys Rev Lett. 2014 Oct 17;113(16):165302. doi: 10.1103/PhysRevLett.113.165302.
We study the relaxation dynamics of an isolated zero temperature quasi-two-dimensional superfluid Bose-Einstein condensate that is imprinted with a spatially random distribution of quantum vortices. Following a period of vortex annihilation the remaining vortices self-organize into two macroscopic coherent "Onsager vortex" clusters that are stable indefinitely--despite the absence of driving or external dissipation in the dynamics. We demonstrate that this occurs due to a novel physical mechanism--the evaporative heating of the vortices--that results in a negative-temperature phase transition in the vortex degrees of freedom. At the end of our simulations the system is trapped in a nonthermal state. Our computational results provide a pathway to observing Onsager vortex states in a superfluid Bose gas.
我们研究了一个孤立的零温度准二维超流玻色 - 爱因斯坦凝聚体的弛豫动力学,该凝聚体带有量子涡旋的空间随机分布。在一段时间的涡旋湮灭之后,剩余的涡旋自组织成两个宏观相干的“昂萨格涡旋”簇,它们无限期稳定——尽管动力学中没有驱动或外部耗散。我们证明这是由于一种新颖的物理机制——涡旋的蒸发加热——导致涡旋自由度中的负温度相变而发生的。在我们模拟的最后,系统被困在一个非热状态。我们的计算结果为在超流玻色气体中观测昂萨格涡旋态提供了一条途径。