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Correlating Electronic Transition With Electrical Output to Reveal Photon‐Mediated Energy Conversion Mechanism in Inner‐Shell Electron Battery

内殻電子電池における電子遷移と電気出力の相関:光子媒介エネルギー変換機構の解明 (AI 翻訳)

Kai Mo, Yuhang Ge, Chen Zhao, Jinghao Zhang, Yan Jiang, Jiamin Chen, X. Liu, Ke Yao, Meng Liao, Peining Chen, Bingjie Wang, B. Tu, Huisheng Peng

Angewandte Chemie International Edition📚 査読済 / ジャーナル2026-07-24#その他Origin: CN
DOI: 10.1002/anie.8135011
原典: https://doi.org/10.1002/anie.8135011

🤖 gxceed AI 要約

日本語

内殻電子電池は超高密度エネルギー貯蔵を実現する有望な技術である。本研究では、特定の高電荷イオンからの光子放出と太陽電池の出力を直接相関させる実験・理論解析を実施し、光子媒介エネルギー変換機構を実証した。La19+イオンを用いて10^4 Wh/kgのエネルギー密度の可能性を示し、将来の超高密度蓄電への応用が期待される。

English

This study demonstrates a photon-mediated energy conversion framework in inner-shell electron batteries by correlating specific electronic transitions of highly charged ions (Mo15+, Mo16+, La19+) with photovoltaic output. Using narrowband filters, they achieve a current response of 2.3e-12 C from 1e6 La19+ ions, and with infrared filtering, an energy density of 1e4 Wh/kg, promising for ultrahigh-density energy storage.

Unofficial AI-generated summary based on the public title and abstract. Not an official translation.

📝 gxceed 編集解説 — Why this matters

日本のGX文脈において

本研究成果は日本の次世代蓄電池研究(例:NEDOプロジェクト)に基礎的知見を提供する可能性があるが、実用化には長期的な研究開発が必要であり、現時点では直接的なGX政策への示唆は限定的。

In the global GX context

This fundamental research on inner-shell electron batteries could contribute to global efforts in developing ultrahigh-density energy storage, which is critical for electrification and renewable integration. However, the technology is at an early stage and not yet applicable to current GX frameworks like TCFD or ISSB.

👥 読者別の含意

🔬研究者:Energy storage researchers can gain insights into a novel photon-mediated energy conversion mechanism that may lead to ultrahigh-density batteries.

📄 Abstract(原文)

ABSTRACT Inner‐shell electron batteries present a promising route to ultrahigh‐density energy storage by harnessing the potential energy confined within inner‐shell orbitals. While prior efforts have demonstrated the conversion of potential energy into electricity with photovoltaic (PV) modules, a direct correlation between inner‐shell electron transition and the resulting electrical output remains obscured by interfering photons. Here, by integrating systematic theoretical analysis of electron transition behaviors with a narrowband‐filter‐based experimental setup, we demonstrate a photon‐mediated energy‐conversion framework, exemplified by Mo 15+ (370.81 nm), Mo 16+ (370.85 nm), and La 19+ (371.96 nm) as highly charged ions (HCIs) selected near the peak efficiency wavelength of the PV module, which directly correlates specific electronic transition with power output. After filtering out unrelated wavelengths, we achieve a current response of 2.3 × 10 −12 C by capturing 7 × 10 7 photons emitted from 1 × 10 6 La 19+ ions. Furthermore, the replacement of the narrowband filter (365–375 nm) with an infrared filter to collect all emitted photons from HCIs yields an energy density of 1 × 10 4 Wh kg −1 based on the mass of 1 × 10 6 La 19+ ions, thereby holding great promise for future ultrahigh‐density energy storage applications.

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