Impact of non-Markovian evolution on characterizations of quantum thermodynamics

Devvrat Tiwari, Subhashis Banerjee
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引用次数: 1

Abstract

Here, we study the impact of non-Markovian evolution on prominent characteristics of quantum thermodynamics such as ergotropy and power. These are benchmarked by the behavior of the quantum speed limit time. We make use of both geometric-based, particularly the quantum Fisher and Wigner–Yanase information metric, and physical properties-based measures, particularly the relative purity measure and relative entropy of coherence measure, to compute the quantum speed limit time. A simple non-Markovian model of a qubit in a bosonic bath exhibiting non-Markovian amplitude damping evolution is considered, which, from the quantum thermodynamic perspective with finite initial ergotropy, can be envisaged as a quantum battery. To this end, we explore the connections between the physical properties-based measures of the quantum speed limit time and the coherent component of ergotropy. The non-Markovian evolution is shown to impact the recharging process of the quantum battery. Furthermore, a connection between the discharging–charging cycle of the quantum battery and the geometric measures of the quantum speed limit time is observed.
非马尔可夫进化对量子热力学表征的影响
在这里,我们研究了非马尔可夫进化对量子热力学的重要特性如自恋性和幂的影响。这些都是以量子速度限制时间的行为为基准的。我们利用基于几何的,特别是量子Fisher和Wigner-Yanase信息度量,以及基于物理性质的度量,特别是相对纯度度量和相对相干熵度量,来计算量子速度极限时间。考虑了玻色子槽中具有非马尔可夫振幅阻尼演化的量子比特的简单非马尔可夫模型,从具有有限初始自恋性的量子热力学角度来看,可以将其设想为量子电池。为此,我们探索了基于物理性质的量子速度极限时间测量与自洽性相干分量之间的联系。非马尔可夫演化对量子电池的充电过程有影响。此外,还观察到量子电池的充放电周期与量子速度极限时间的几何度量之间的联系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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