论文标题
二维量子涡流气体中的湍流松弛至平衡
Turbulent relaxation to equilibrium in a two-dimensional quantum vortex gas
论文作者
论文摘要
我们在二维手性涡流气体的湍流弛豫动力学中实验研究了微域平衡状态的出现。使用一系列机械搅拌方案,将同时涡旋注入准二维磁盘形原子阳离子凝结物中。结果发现,所得的长期涡流分布与固定的Poisson-Boltzmann方程非常一致,该系统描述了固定能量$ \ cal {h} $和Angular Mommentum $ \ cal {M} $的微磁合奏。平衡状态的特征在于反度$ \hatβ$的相应热力学变量和旋转频率$ \hatΩ$。我们能够实现跨越涡流气体的全相图的平衡,包括零温度附近的轴心状态,无限温度和不可压力的绝对温度。在足够高的能量下,系统表现出对称性的过渡,导致在绝对温度负下的轴平衡相不再具有容器的对称性。我们引入了一个具有现象学阻尼和噪声的点 - 涡流模型,该模型能够定量地重现平衡动力学。
We experimentally study emergence of microcanonical equilibrium states in the turbulent relaxation dynamics of a two-dimensional chiral vortex gas. Same-sign vortices are injected into a quasi-two-dimensional disk-shaped atomic Bose-Einstein condensate using a range of mechanical stirring protocols. The resulting long-time vortex distributions are found to be in excellent agreement with the meanfield Poisson-Boltzmann equation for the system describing the microcanonical ensemble at fixed energy $\cal{H}$ and angular momentum $\cal{M}$. The equilibrium states are characterized by the corresponding thermodynamic variables of inverse temperature $\hatβ$ and rotation frequency $\hatω$. We are able to realize equilibria spanning the full phase diagram of the vortex gas, including on-axis states near zero-temperature, infinite temperature, and negative absolute temperatures. At sufficiently high energies the system exhibits a symmetry-breaking transition, resulting in an off-axis equilibrium phase at negative absolute temperature that no longer shares the symmetry of the container. We introduce a point-vortex model with phenomenological damping and noise that is able to quantitatively reproduce the equilibration dynamics.