量子電池の実証プロトタイプを初めて実現(Scientists take major step towards a working quantum battery)

2026-03-18 ロイヤルメルボルン工科大学(RMIT)

オーストラリアのRMIT大学の研究チームは、エネルギーを従来より高速に蓄積できる量子電池のプロトタイプを開発した。量子力学的効果を利用し、複数の量子系を協調的に充電することで、従来型電池よりも高効率かつ高速なエネルギー蓄積が可能となることを実証。特に「量子優位性」による充電速度の向上が確認され、エネルギー損失の低減にも寄与する可能性が示された。現段階では実験的規模だが、将来的には再生可能エネルギー貯蔵や電子デバイスへの応用が期待される。量子技術とエネルギー工学の融合による新たな蓄電概念を提示する成果である。

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量子電池からの超広範電力 Superextensive electrical power from a quantum battery

Kieran Hymas,Jack B. Muir,Daniel Tibben,Joel van Embden,Tadahiko Hirai,Christopher J. Dunn,Daniel E. Gómez,James A. Hutchison,Trevor A. Smith &James Q. Quach
Light: Science & Applications  Published:13 March 2026
DOI:https://doi.org/10.1038/s41377-026-02240-6

量子電池の実証プロトタイプを初めて実現(Scientists take major step towards a working quantum battery)

Abstract

Superextensivity, where the response of a physical system scales super-linearly with size, originates from collective quantum effects and provides a promising route to augment next-generation quantum technologies. While recent work has demonstrated superextensive behaviour in the coherent dynamics of quantum systems, these effects typically occur on short timescales, prohibiting their practical utility. In contrast, triggering steady-state superextensive effects in, for example, a generated electric current, remains unexplored despite the immediate impact on photovoltaic technologies. Here, we utilise a microcavity quantum battery as an experimental platform that superextensively captures light energy and converts it to an electric current via the incorporation of charge transport layers into the resonant microcavity. This architecture enables, for the first time, a complete quantum battery charge-discharge cycle. We demonstrate that strong light–matter coupling induced by the microcavity leads to superextensive scaling of the steady-state electrical discharging power under low-intensity, incoherent illumination. Our results provide the first experimental demonstration of superextensive light-to-charge conversion in steady-state, highlighting the feasibility of leveraging strong light–matter coupling for enhanced energy harvesting under low-light conditions.

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