Unlocking High-Valent Chalcogen Redox with Halide-Rich Electrolytes for High-Energy Lithium Batteries

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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Publication Details

Journal
Nature Communications
Published
2026-08-26
DOI
https://doi.org/10.1038/s41467-026-77258-w
Primary Topic
Advanced Battery Materials and Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Unlocking High-Valent Chalcogen Redox with Halide-Rich Electrolytes for High-Energy Lithium Batteries

Yixin Shen, Bolong Huang, Jiaqian Qin, Feng Xu et al.
Nature Communications
Advanced Battery Materials and Technologies
article

Unlocking High-Valent Chalcogen Redox with Halide-Rich Electrolytes for High-Energy Lithium Batteries

Yixin Shen, Bolong Huang, Jiaqian Qin, Feng Xu, Mingzi Sun, Yuxuan Wu, Zhenyu Shi, Doudou Feng, Hao Zhang
article en

Abstract

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.

Nature Communications
Chulalongkorn University (TH), City University of Hong Kong (HK), City University of Hong Kong, Shenzhen Research Institute (CN)
Croucher Foundation, National Natural Science Foundation of China, Research Grants Council, University Grants Committee, Natural Science Foundation of Guangdong Province
Responsible consumption and production
Openalex Percentile: Top 19%
Advanced Battery Materials and Technologies
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