论文标题
量子系统与有限浴室相关:非平衡动力学和热力学
Quantum systems correlated with a finite bath: nonequilibrium dynamics and thermodynamics
论文作者
论文摘要
描述远离平衡的开放量子系统是具有挑战性的,特别是当环境在介观期间,在演变过程中发展非平衡特征时,或者当无法忽略内存效应时。在这里,我们得出了一个明确说明系统浴的相关性的主方程,并在粗粒级别上包括动态发展的浴缸。这样的主方程适用于多种物理系统,包括由随机矩阵理论或本征态热假设所描述的物理系统。我们获得了局部详细的平衡条件,有趣的是,该条件并不能禁止稳定的负温度状态与通过玻尔兹曼熵的温度定义一致。我们基准对确切演变的主方程进行基准,并在传统的born-markov-spersemaster方程崩溃的情况下观察到一个很好的协议。有趣的是,即使某些假设放宽了,对动力学的当前描述即使仍然是准确的。即使我们的主方程描述了Gibbs状态未描述的动态发展的浴缸,但我们提供了一致的非平衡热力学框架,并得出了第一和第二定律以及Clausius的不平等。我们的工作为研究各种纳米级量子技术铺平了道路,包括发动机,冰箱或热泵,超出了常规使用的静态热浴的假设。
Describing open quantum systems far from equilibrium is challenging, in particular when the environment is mesoscopic, when it develops nonequilibrium features during the evolution, or when the memory effects cannot be disregarded. Here, we derive a master equation that explicitly accounts for system-bath correlations and includes, at a coarse-grained level, a dynamically evolving bath. Such a master equation applies to a wide variety of physical systems including those described by Random Matrix Theory or the Eigenstate Thermalization Hypothesis. We obtain a local detailed balance condition which, interestingly, does not forbid the emergence of stable negative temperature states in unison with the definition of temperature through the Boltzmann entropy. We benchmark the master equation against the exact evolution and observe a very good agreement in a situation where the conventional Born-Markov-secular master equation breaks down. Interestingly, the present description of the dynamics is robust and it remains accurate even if some of the assumptions are relaxed. Even though our master equation describes a dynamically evolving bath not described by a Gibbs state, we provide a consistent nonequilibrium thermodynamic framework and derive the first and second law as well as the Clausius inequality. Our work paves the way for studying a variety of nanoscale quantum technologies including engines, refrigerators, or heat pumps beyond the conventionally employed assumption of a static thermal bath.