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Path-integral Monte Carlo study of particles obeying quantum mechanics and classical statistics

机译:路径整体蒙特卡罗研究术语遵循量子力学和古典统计的粒子研究

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Ultracold atomic systems have been of great research interest in the past, with more recent attention being paid to systems of mixed species. In this work, we carry out nonperturbative path-integral Monte Carlo (PIMC) simulations of N distinguishable particles at finite temperature, which can be thought of as an ultracold atomic system containing N distinct species. We use the PIMC approach to calculate thermodynamic properties of particles interacting via hard-sphere and hard-cavity potentials. The first problem we study is a two-particle system interacting via a hard-sphere and hard-cavity interaction in order to test the effectiveness of two approximations for the thermal density matrix corresponding to these potentials. We then apply the PIMC method to a system of many hard-sphere particles under periodic boundary conditions at varying temperature in order to calculate the energy per particle, pressure, and specific heat of the system. We examine how finite-size effects impact the results of PIMC simulations of hard-sphere particles and when the thermodynamic limit has been reached. Our results provide microscopic benchmarks for a system containing distinguishable particles, which can be thought of as a limiting case for ultracold atomic systems of mixed species.
机译:Ultracold原子系统对过去具有很大的研究兴趣,最近的注意力被支付给混合物种的系统。在这项工作中,我们在有限温度下执行N个可区分颗粒的非触发路径 - 整体蒙特卡罗(PIMC)模拟,这可以被认为是含有N个不同物种的超自然原子系统。我们使用PIMC方法计算通过硬球和硬腔电位相互作用的颗粒的热力学性质。我们研究的第一问题是通过硬球和硬腔相互作用相互作用的双粒子系统,以便测试与这些电位对应的热密度矩阵的两个近似的有效性。然后,我们在不同温度下在周期性边界条件下将PIMC方法应用于许多硬球粒子的系统,以计算每个粒子,压力和系统的特定热量的能量。我们检查有限尺寸的效果如何影响硬球颗粒的PIMC模拟的结果以及达到热力学极限时。我们的结果为含有可区分颗粒的系统提供了微观基准,这可以被认为是混合物种的超级原子系统的限制案例。

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