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    Enhanced charging in multibattery systems by nonreciprocity

    Hua-Wei Zhao, Yong Xie, Xinyao Huang*, and Guo-Feng Zhang†

    • *Contact author: xinyaohuang@buaa.edu.cn
    • †Contact author: gf1978zhang@buaa.edu.cn

    Phys. Rev. A 112, 022214 – Published 19 August, 2025

    DOI: https://doi.org/10.1103/fbv7-m7sd

    Abstract

    Quantum batteries (QBs), harnessing quantum systems to transfer and store energy, have garnered substantial attention recently, enabling potentials in enhanced charging capacity, increased charging power, and device miniaturization. However, constrained by the weak interaction between the quantum nodes, the implementations of QB networks exhibit limited charging performance. In this work, we propose an efficient approach to improving charging in multibattery systems by capitalizing on nonreciprocity. By constructing non-Hermitian Aharonov-Bohm triangles to establish unidirectional energy transfer in both cascaded and parallel configurations, we can achieve a significant enhancement of the stored energy in QBs under weak interaction. Remarkably, the nonreciprocal cascaded setups display an exponentially increasing gain in the battery energy as the charging distance lengthens compared to the reciprocal counterparts. Furthermore, we demonstrate that nonreciprocity can also lead to the same enhancement in the charging power of QBs, accelerating the charging processes. Our findings provide a practical pathway for enhancing the charging performance of QBs and exhibit the potentials for constructing efficient QB networks.

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