论文标题

在数值上“精确”完全量子制度中熵产生的模拟:Boltzmann熵与von Neumann熵

Numerically "exact" simulations of entropy production in the fully quantum regime: Boltzmann entropy versus von Neumann entropy

论文作者

Sakamoto, Souichi, Tanimura, Yoshitaka

论文摘要

我们提出了一种方案,以评估使用来自数值“精确”运动层次层次方程(HEOM)的准静态Helmholtz能量在时间依赖的外力下与热浴的系统相结合的系统。我们计算了由自旋系统与非马克维亚热浴的熵产生的熵,以达到各种温度。我们表明,当对外部扰动的变化发生得足够缓慢时,系统始终达到热平衡。因此,我们为等温过程计算了玻尔兹曼的熵和von neumann熵,以及基于HEOM的准静态平衡系统的各种热力学变量,例如内部能量,热量和工作的变化。我们发现,尽管玻尔兹曼和冯·诺伊曼案例中系统熵的特征是系统的函数 - 托架耦合强度相似,但总熵产生的耦合强度是完全不同的。 Boltzmann情况下的总熵产生始终为正,而在Von Neumann的情况下,如果我们选择了总系统的热平衡状态(一个未分离的热平衡状态)作为初始状态。这是因为冯·诺伊曼(Von Neumann)案例中的总熵产生未正确考虑系统的熵的贡献 - 浴相互作用。因此,必须使用玻璃体熵来研究完全量子状态的熵产生。最后,我们检查了jarzynski平等的适用性。

We present a scheme to evaluate thermodynamic variables for a system coupled to a heat bath under a time-dependent external force using the quasi-static Helmholtz energy from the numerically "exact" hierarchical equations of motion (HEOM). We computed the entropy produced by a spin system strongly coupled to a non-Markovian heat bath for various temperatures. We showed that when changes to the external perturbation occurred sufficiently slowly, the system always reached thermal equilibrium. Thus, we calculated the Boltzmann entropy and the von Neumann entropy for an isothermal process, as well as various thermodynamic variables, such as changes of internal energies, heat, and work, for a system in quasi-static equilibrium based on the HEOM. We found that, although the characteristic features of the system entropies in the Boltzmann and von Neumann cases as a function of the system--bath coupling strength are similar, those for the total entropy production are completely different. The total entropy production in the Boltzmann case is always positive, whereas that in the von Neumann case becomes negative if we chose a thermal equilibrium state of the total system (an unfactorized thermal equilibrium state) as the initial state. This is because the total entropy production in the von Neumann case does not properly take into account the contribution of the entropy from the system--bath interaction. Thus, the Boltzmann entropy must be used to investigate entropy production in the fully quantum regime. Finally, we examined the applicability of the Jarzynski equality.

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