Thermal vapor quantum battery based on collective atomic spins
Jinyi Li, Juncheng Zheng, Xue Yang, Kainan Hu, Kanzheng Zhou, Junkai Zhuang, Hengyan Wang, Zhihao Ma, Mingxing Luo, and Wenqiang Zheng

TL;DR
This work demonstrates a room-temperature quantum battery using a large atomic spin ensemble, showing how quantum coherence enhances energy storage and linking it to quantum entropy measures.
Contribution
The paper introduces a scalable thermal atomic spin ensemble quantum battery and experimentally links its capacity to quantum coherence and entropy measures.
Findings
Quantum coherence significantly boosts storage capacity.
Capacity decreases monotonically with coherence loss.
Capacity relates to von Neumann, Tsallis, and linear entropies.
Abstract
Quantum batteries harness non-classical resources, such as quantum coherence and entanglement, to surpass the performance limits of classical energy-storage devices. Here we realize a room-temperature quantum battery based on a collective atomic spin ensemble in a thermal alkali-metal vapor, containing approximately Rb atoms with coherence times exceeding 110 ms. We operationally determine the battery capacity by directly measuring the extremal internal energies accessible under unitary evolution. This tomography-free protocol agrees closely with the conventional state-based definition and verifies the decomposition of capacity into coherent and incoherent contributions. We further show that quantum coherence can substantially enhance the storage capability independently of level populations, and experimentally establish quantitative relations linking battery capacity…
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