论文标题
开放量子电池的耗散动力
Dissipative dynamics of an open quantum battery
论文作者
论文摘要
与外部环境结合不可避免地会影响量子系统的动力学。在这里,我们考虑了以两级系统建模的量子电池的充电性能受到欧姆热储层的存在的影响。后者与量子电池的纵向和横向自旋组件耦合,包括脱位和纯粹的脱位机制。经过静态驾驶的量子电池的充电和放电动力学,将利用适当的映射到所谓的自旋玻璃型模型中。依赖于系统的弱阻尼扩展,提出了存储在弱耦合方案中的能量的时间演变的分析表达式。在这里,详细讨论了破坏性和纯粹的耗散耦合。我们认为,前者会导致更好的充电性能,还显示出有趣的特征,让人联想到储层的存在引起的羔羊移位水平分裂的重新归如此。通过监视充电协议已关闭后的能量行为,还可以解决充电稳定性。这项研究提出了一个一般框架,以研究放松效应,还可以包括非马尔可夫效应,并揭示了控制量子电池在实现量子中的控制和工程系统浴耦合的重要性。
Coupling with an external environment inevitably affects the dynamics of a quantum system. Here, we consider how charging performances of a quantum battery, modelled as a two level system, are influenced by the presence of an Ohmic thermal reservoir. The latter is 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, subjected to a static driving, are obtained exploiting a proper mapping into the so-called spin-boson model. Analytic expressions for the time evolution of the energy stored in the weak coupling regime are presented relying on a systematic weak damping expansion. Here, decoherence and pure dephasing dissipative coupling are discussed in details. We argue that the former results in better charging performances, showing also interesting features reminiscent of the Lamb shift level splitting renormalization induced by the presence of the reservoir. Charging stability is also addressed, by monitoring the energy behaviour after the charging protocol has been switched off. This study presents a general framework to investigate relaxation effects, able to include also non Markovian effects, and it reveals the importance of controlling and, possibly, engineering system-bath coupling in the realization of quantum batteries.