硫族元素
氧化还原
电解质
锂(药物)
硒
无机化学
化学
硫化物
硒化物
卤化物
硫黄
溴化物
硫化镍
二硒醚
材料科学
化学工程
硫化铁
过渡金属
作者
Yixin Shen,Hao Zhang,Yuxuan Wu,Mingzi Sun,Doudou Feng,Jiaqian Qin,Zhenyu Shi,Bolong Huang,Feng Xu
标识
DOI:10.1038/s41467-026-77258-w
摘要
Elemental chalcogens (Ch) are promising positive materials for sustainable, high-energy lithium batteries, yet their chemistry is generally limited by the two-electron Ch0/Ch2− conversion below 2.5 V. This leaves the high-valent redox regime largely unexplored due to the instability of oxidized chalcogen species. Here, we report a halide-rich electrolyte design that enables reversible high-valent chalcogen redox in lithium batteries. By using soluble organic halide salts with asymmetric cations, the electrolyte provides active chloride or bromide anions to promote high-valent redox and stabilize oxidized intermediates, thereby enabling a redox-amphoteric selenium (Se) conversion pathway. This transition from reduction-only chemistry (Se2−/Se0) to three-electron conversion (Se2−/Se0/Se+) is evidenced by a distinct plateau at ~2.6 V, corresponding to the Se0/Se+ process. Consequently, the Li | |Se cell achieves a reversible discharge capacity of 980 mAh g−1 and a specific energy of 2003 Wh kgSe−1 with stable cycling performance over 200 cycles at 400 mA g−1. This strategy is further extended to sulfur and selenium sulfide materials, activating high-valent conversion. These results establish a potentially general route to access high-valent, multi-electron chalcogen chemistry, broadening the energy density limits for next-generation batteries. Lithium–selenium batteries are limited by conventional two-electron selenium redox chemistry. Here, authors design halide-rich electrolytes that stabilize high-valent selenium redox, enabling three-electron Li–Se batteries with high specific energy.
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