论文标题

带有非平衡储层的驱动驱动量子电池

Driven-dissipative quantum battery with nonequilibrium reservoirs

论文作者

Wang, Zhihai, Yu, Hongwei, Wang, Jin

论文摘要

我们在外部驾驶和耗散下研究量子电池系统。该系统由一个耦合的两级充电器和浸入非平衡的费米子储层中的电池组成。通过考虑以非扰动方式诱导的外部驾驶和充电器 - 电池耦合引起的能量光谱的变化,我们超越了世俗近似,以推导Redfield Master方程。在非平衡情况下,可以通过补偿机制优化量子电池的充电效率和功率。当充电器和电池不呼声时,表征非平衡程度的储层之间的显着化学势差,起着至关重要的作用。具体而言,当平均化学电位为负(正)时,充电器的频率应高于电池的频率(阳性),以在强烈的非平衡条件下实现增强的充电效率和功率。值得注意的是,在非平衡情况下的效率可以超过平衡设置中的效率。此外,我们发现纠缠与效率之间没有正相关,挑战了纠缠必定会增强量子设备的性能的普遍假设。我们的结果提供了对非平衡开放系统中量子电池设计和优化的见解。

We investigate a quantum battery system under both external driving and dissipation. The system consists of a coupled two-level charger and battery immersed in nonequilibrium fermionic reservoirs. By considering the changes in the energy spectrum induced by external driving and charger-battery coupling in a non-perturbative manner, we go beyond the secular approximation to derive the Redfield master equation. In the nonequilibrium scenario, both charging efficiency and power of the quantum battery can be optimized through a compensation mechanism. When the charger and battery are off-resonance, a significant chemical potential difference between the reservoirs, which characterizes the degree of nonequilibrium, plays a crucial role. Specifically, the charger's frequency should be higher (lower) than that of the battery when the average chemical potential is negative (positive) to achieve enhanced charging efficiency and power under strong nonequilibrium conditions. Remarkably, the efficiency in the nonequilibrium case can surpass that in the equilibrium setup. Moreover, we find no positive correlation between entanglement and efficiency, challenging the prevailing assumption that entanglement necessarily enhances the performance of quantum devices. Our results provide insights into the design and optimization of quantum batteries in nonequilibrium open systems.

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