论文标题

在时间依赖性开放量子系统中的热力学第一定律中

On the First Law of Thermodynamics in Time-Dependent Open Quantum Systems

论文作者

Kumar, Parth, Stafford, Charles A.

论文摘要

如何在开放量子系统中严格定义热力学数量,例如热量,工作和内部能量,远离平衡仍然是量子热力学的重要开放问题。热量是一种数量,其基本定义仅适用于无限扰动的系统中的过程,因此必须在强驱动的系统中仔细考虑。介质学的一个关键见解是,远离局部驾驶和开放量子系统的耦合,储层确实只有无限扰动,从而允许定义散热。熵的最终分区需要对能量学的希尔伯特空间分区进行分区,从而导致一个明确的操作员,用于相互作用的时间依赖性开放量子系统的内部能量。使用非平衡绿色功能的形式形式得出了对系统的热电流和系统传递的功率的完全一般表达式,并建立了实验性的有意义的有意义且量子一致的系统,将所考虑的系统的能量机械地划分为在系统上流出并进行的工作。还分析了强驱动的开放量子系统中内部能的时空分布。这种形式主义用于分析模型量子机的热力学性能:一个驱动的两级量子系统强烈耦合到两个金属储层,可以在几种配置中运行 - 作为化学泵/发动机或热泵/发动机。

How to rigorously define thermodynamic quantities such as heat, work, and internal energy in open quantum systems driven far from equilibrium remains a significant open question in quantum thermodynamics. Heat is a quantity whose fundamental definition applies only to processes in systems infinitesimally perturbed from equilibrium, and as such, must be accounted for carefully in strongly-driven systems. A key insight from Mesoscopics is that infinitely far from the local driving and coupling of an open quantum system, reservoirs are indeed only infinitesimally perturbed, thereby allowing the heat dissipated to be defined. The resulting partition of the entropy necessitates a Hilbert-space partition of the energetics, leading to an unambiguous operator for the internal energy of an interacting time-dependent open quantum system. Fully general expressions for the heat current and the power delivered by various agents to the system are derived using the formalism of nonequilibrium Green's functions, establishing an experimentally meaningful and quantum mechanically consistent division of the energy of the system under consideration into Heat flowing out of and Work done on the system. The spatio-temporal distribution of internal energy in a strongly-driven open quantum system is also analyzed. This formalism is applied to analyze the thermodynamic performance of a model quantum machine: a driven two-level quantum system strongly coupled to two metallic reservoirs, which can operate in several configurations--as a chemical pump/engine or a heat pump/engine.

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