バッテリーの寿命を延ばす新発見(University of Houston Scientists Recharge Battery Potential)

ad

2025-06-05 ヒューストン大学(UH)

ヒューストン大学とブラウン大学の研究チームは、固体電池内部で発生する空隙(ボイド)が融合して電池劣化を引き起こす過程をオペランドSEMで観察し、電池寿命を短縮する原因を解明しました。対策として、リチウム負極にマグネシウムなどの合金を添加することでボイドの形成を抑制し、電池の安定性を向上。従来必要だった高圧条件を回避でき、小型化と安全性向上に貢献します。研究はDOE支援でNature Communicationsに掲載。

<関連情報>

オペランド走査型電子顕微鏡を用いたリチウム-固体電解質界面の進化の画像化 Imaging the evolution of lithium-solid electrolyte interface using operando scanning electron microscopy

Lihong Zhao,Min Feng,Chaoshan Wu,Liqun Guo,Zhaoyang Chen,Samprash Risal,Qing Ai,Jun Lou,Zheng Fan,Yue Qi & Yan Yao
Nature Communications  Published:08 May 2025
DOI:https://doi.org/10.1038/s41467-025-59567-8

figure 1

Abstract

The quality of Li–solid electrolyte interface is crucial for the performance of solid-state lithium metal batteries, particularly at low stack pressure, but its dynamics during cell operation remain poorly understood due to a lack of reliable operando characterization techniques. Here, we report the evolution of Li–electrolyte interface with high spatial resolution using operando scanning electron microscopy under realistic operating conditions. By tracking the stripping process of both Li and Li-rich Li-Mg alloy anodes, we show that multiple voids coalesce into a single gap and eventually delaminate the interface in Li, whereas the voids split and collapse to partially recover interfacial contact in Li-Mg. Density functional theory calculations show that the stronger Mg-S interaction at the metal–electrolyte interface attracts Mg toward the interface and repels Li-vacancies into the bulk, resulting in a reduced number of voids. The pressure-dependent voltage profiles of Li and Li-Mg stripping suggest that loss of contact due to void formation, rather than Mg accumulation at the interface, is the origin of high overpotential that limits the utilization of metal anodes. Improved interfacial contact enables stable cycling of all-solid-state lithium full cell at low stack pressure (1 MPa) and moderate rate (2 mA cm−2) simultaneously. The real-time visualization of Li–electrolyte interface dynamics provides critical insights into the rational design of solid-state battery interfaces.

0402電気応用
ad
ad
Follow
ad
タイトルとURLをコピーしました