BTZ 时空中开放量子电池的耗散动力学

Zehua Tian, Xiaobao Liu, Jieci Wang, Jiliang Jing
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摘要

我们将量子电池建模为两级系统,考虑在 BTZ 时空中,满足 Dirichlet、透明和 Neumann 边界条件的真空波动如何影响量子电池的充电性能。量子电池受到外部静态驱动的影响,外部静态驱动起充电器的作用。量子电池的充放电动力学是通过将以前相对论框架下的开放量子系统方法扩展到包括驱动和多重耦合在内的这种更一般的情景而得出的。文中给出了存储能量的时间演化分析表达式。我们发现,当驱动振幅强于/弱于量子电池的能级间距时,纯去相耗散耦合比去相耗散耦合的充电性能更好/更差。我们还发现,与封闭的量子黄油情况相比,较高的霍金温度有助于改善某些条件下的充电性能,这意味着在充电协议中通过耗散从弯曲时空中的真空波动中提取能量是可行的。此外,我们还通过监测充电协议关闭后的能量行为来解决充电稳定性问题。我们的研究提出了一个研究弯曲时空中弛豫效应的一般框架,揭示了时空特性和场边界条件如何影响充电过程,这反过来又可能为通过充电协议探索时空特性和热力学提供启示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dissipative dynamics of an open quantum battery in the BTZ spacetime
We consider how charging performances of a quantum battery, modeled as a two-level system, are influenced by the presence of vacuum fluctuations of a quantum field satisfying the Dirichlet, transparent, and Neumann boundary conditions in the BTZ spacetime. The quantum battery is subjected to an external static driving which works as a charger. Meanwhile, the quantum field is assumed to be coupled to both longitudinal and transverse spin components of the quantum battery including decoherence and pure dephasing mechanisms. Charging and discharging dynamics of the quantum battery are derived by extending the previous open quantum system approach in the relativistic framework to this more general scenario including both the driving and multiple coupling. Analytic expressions for the time evolution of the energy stored are presented. We find that when the driving amplitude is stronger/weaker than the energy-level spacing of the quantum battery the pure dephasing dissipative coupling results in better/worse charging performances than the decoherence dissipative coupling case. We also find that higher Hawking temperature helps to improve the charging performance under certain conditions compared with the closed quantum buttery case, implying the feasibility of energy extraction from vacuum fluctuations in curved spacetime via dissipation in charging protocol. Different boundary conditions for quantum field may lead to different charging performance. Furthermore, we also address the charging stability by monitoring the energy behaviour after the charging protocol has been switched off. Our study presents a general framework to investigate relaxation effects in curved spacetime, and reveals how spacetime properties and field boundary condition affect the charging process, which in turn may shed light on the exploration of the spacetime properties and thermodynamics via the charging protocol.
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