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Ultra-fast converging path-integral approach for rotating ideal Bose-Einstein condensates

机译:旋转理想Bose-Einstein冷凝物的超快速收敛路径积分方法

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A recently developed efficient recursive approach for analytically calculating the short-time evolution of the one-particle propagator to extremely high orders is applied here for numerically studying the thermodynamical and dynamical properties of a rotating ideal Bose gas of Rb-87 atoms in an anharmonic trap. At first, the one-particle energy spectrum of the system is obtained by diagonalizing the discretized short-time propagator. Using this, many-boson properties such as the condensation temperature, the ground-state occupancy, density profiles, and time-of-flight absorption pictures are calculated for varying rotation frequencies. The obtained results improve previous semiclassical calculations, in particular for smaller particle numbers. Furthermore, we find that typical time scales for a free expansion are increased by an order of magnitude for the delicate regime of both critical and overcritical rotation.
机译:本文使用一种最近开发的有效递归方法来分析计算单粒子传播子的短时演化到极高阶,用于数值研究非谐阱中旋转的理想Rb-87原子玻色气体的热力学和动力学性质。 。首先,通过对角化离散的短时传播子,获得系统的单粒子能谱。使用此功能,可以针对变化的旋转频率计算出许多玻色子性质,例如冷凝温度,基态占有率,密度分布图和飞行时间吸收图像。获得的结果改进了先前的半经典计算,尤其是对于较小的粒子数。此外,我们发现,对于临界旋转和超临界旋转的精细状态,自由扩展的典型时间尺度会增加一个数量级。

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