消散
工作(物理)
能量(信号处理)
量子
物理
边界(拓扑)
量子点
电荷(物理)
方案(数学)
储能
计算机科学
范围(计算机科学)
控制(管理)
高效能源利用
量子力学
能量转移
量子系统
量子计算机
反馈控制
量子技术
低能
控制理论(社会学)
量子退相干
作者
Yin, Xian-Li,Guo Meixi,Huang Jian,Lee, Heung-wing Joseph,Zhang, Guofeng
标识
DOI:10.48550/arxiv.2511.07134
摘要
Quantum batteries (QBs), acting as energy storage devices, have potential applications in future quantum science and technology. However, the QBs inevitably losses energy due to their interaction with environment. How to enhance the performance of the QBs in the open-system case remains an important challenge. Here we propose a scheme to realize the driven-dissipative QBs in atom-waveguide-QED systems and demonstrate significant improvements in both the stored energy and extractable work (ergotropy) of the QBs via feedback control. For a single-atom QB, we show that combining the measurement and coherent feedback controls enables nearly perfect stable charging under the weak coherent driving. For the QB array, the measurement-based feedback allows us to control different dynamical phases in the thermodynamic limit: (i) a continuous boundary time-crystal phase, where persistent periodic energy charge-discharge oscillations emerge despite the presence of the dissipation into the waveguide, and (ii) two stationary phases -- one reaches full charge while the other maintains only small energy storage. This work broadens the scope of driven-dissipative QBs and provides practical strategies for enhancing their performance.
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