电池(电)
钥匙(锁)
材料科学
计算机科学
化学
纳米技术
电流(流体)
储能
环境科学
工艺工程
作者
Linbin Tang,Zechun Lu,Zongyan Gao,Xuechun Lou,Junjian Li,Yujie Wen,Junchao Chen,Zhexuan Zhu,Shijing Luo,L T Zhou,Guangfeng Wei,Zuofeng Chen,Hongying Zhao,Tong Li,Luming Peng,Fengting Li,Tao Liu
标识
DOI:10.1038/s41467-026-75284-2
摘要
Achieving a reversible four-electron-per-oxygen-molecule oxygen evolution reaction is an essential yet highly challenging task for nonaqueous lithium hydroxide-based Li | |O2 batteries, as the kinetically sluggish oxygen evolution reaction tends to entangle with competing parasitic reactions, whose origins and mitigating strategies remain largely elusive. Here we construct a highly reversible lithium hydroxide-based Li | |O2 battery using iron–cobalt–nickel layered double hydroxide catalysts and tetramethylene sulfone-based electrolytes. Lithium hydroxide decomposition toward oxygen evolution involves key reactive oxygen species of surface-bound hydroxyl and hydroxyl radicals, but no singlet oxygen. These hydroxyl species corrode the electrolyte and carbon support, predominantly accounting for charging irreversibility. While oxidation-resistant solvents and electrical conductors are necessary to reduce hydroxyl-induced side reactions, the synergistic interplay of interfacial water solvation and catalytic surface structures hold the key to steering hydroxyl activity toward the desirable oxygen evolution reaction or by-product formation. This work offers insights into achieving long-life lithium hydroxide-based Li | |O2 batteries. LiOH-based Li | |O2 batteries offer high energy density but suffer from poor reversibility. Here, authors study side-reaction origins and key reactive oxygen species during LiOH decomposition upon charge, and propose holistic strategies to effectively improve the Faradaic efficiency.
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