Transmon公司
量子
物理
量子位元
量子技术
量子传感器
量子力学
量子计算机
可扩展性
超导量子计算
开放量子系统
量子网络
量子信息
超导电性
电池(电)
统计物理学
量子模拟器
宏观量子现象
不相关
量子系统
态叠加原理
量子纠错
量子算法
量子信息科学
计算机科学
拓扑(电路)
量子热力学
量子计量学
作者
Chang-Kang Hu,Chilong Liu,Jingchao Zhao,Liuzhu Zhong,Yuxuan Zhou,Mingze Liu,Haolan Yuan,Yongchang Lin,Yue Xu,Guantian Hu,Guixu Xie,Zixing Liu,Rui Zhou,Yougui Ri,Wenxuan Zhang,Ruicheng Deng,A. Saguia,Xiayu Linpeng,M. S. Sarandy,Song Liu
摘要
Quantum battery, as a novel energy storage device, offers the potential for unprecedented efficiency and performance beyond the capabilities of classical systems, with broad implications for future quantum technologies. Here, we experimentally demonstrate quantum charging advantage (QCA) in a scalable solid-state quantum battery. More specifically, we show how double-excitation Hamiltonians for two-level systems promote scalable QCA with standard methods. We effectively implement the collective evolution of quantum systems with two up to 12 battery cells in a superconducting quantum processor, and study the performance of quantum charging compared to its uncorrelated classical counterpart. The model considered is a linear chain of superconducting transmon qubits with only nearest-neighbor and pairwise interactions, which constitute the simplest model of a multi-cell quantum battery. Our results empirically realize substantial QCA without the necessity of adopting long-range and many-body interactions and showcase the quantum features of the QB charging processes with measurements of nonzero coherent ergotropy, incoherent ergotropy, and entanglement, revealing a promising prospect for further developments of efficient and experimentally feasible protocols for QCA.
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