主方程
物理
介观物理学
量子热力学
量子
谐振子
工作(物理)
统计物理学
明细余额
联轴节(管道)
热的
热力学定律
量子系统
蓄热器
经典力学
热力学
非平衡态热力学
传热
量子力学
工程类
机械工程
热撒布器
作者
Gabriele De Chiara,Gabriel T. Landi,Adam Hewgill,Brendan Reid,Alessandro Ferraro,Augusto J Roncaglia,Mauro Antezza
标识
DOI:10.1088/1367-2630/aaecee
摘要
The study of open quantum systems often relies on approximate master equations derived under the assumptions of weak coupling to the environment. However when the system is made of several interacting subsystems such a derivation is in many cases very hard. An alternative method, employed especially in the modeling of transport in mesoscopic systems, consists in using local master equations (LMEs) containing Lindblad operators acting locally only on the corresponding subsystem. It has been shown that this approach however generates inconsistencies with the laws of thermodynamics. In this paper we demonstrate that using a microscopic model of LMEs based on repeated collisions all thermodynamic inconsistencies can be resolved by correctly taking into account the breaking of global detailed balance related to the work cost of maintaining the collisions. We provide examples based on a chain of quantum harmonic oscillators whose ends are connected to thermal reservoirs at different temperatures. We prove that this system behaves precisely as a quantum heat engine or refrigerator, with properties that are fully consistent with basic thermodynamics.
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