碲
氧化还原
水溶液
硫族元素
化学
电池(电)
同步加速器
电化学
纳米技术
原位
电极
再分配(选举)
动力学
电子转移
材料科学
化学工程
电子结构
无机化学
工作(物理)
降级(电信)
储能
化学物理
作者
Ningyu Wu,Hongrun Jin,Zhoudong Yang,Boya Wang,Jinchi Li,Jiazhuang Tian,Hongyi Li,Zeyu Wang,Shixiang Ding,Xinran Li,Tengsheng Zhang,Fanxing Bu,Dongyuan Zhao,Wanhai Zhou,Dongliang Chao
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-02-27
卷期号:20 (10): 8736-8745
标识
DOI:10.1021/acsnano.5c21722
摘要
Tellurium (Te)-based redox chemistries are attractive for high-energy aqueous batteries due to their multielectron transfer and high theoretical capacity, but their available capacities are hindered by the high oxidation energy barrier of Te. Here, we propose a heterochalcogen strategy by introducing electronegative Se to regulate the electronic structure of Te. Combined in situ characterizations, synchrotron spectroscopy, and theoretical simulation reveal the formation of Te 2+ intermediates and the charge redistribution via Se doping, facilitating the complete six-electron K 2 Te 4 O 9 ↔ K 2 Te conversion. As a result, the optimized Se-doped Te electrodes deliver a high reversible capacity of 1186 mAh g –1 with an exceptional Te utilization rate of 98.6%, unprecedented rate performance of 688 mAh g –1 at 6 A g –1, and stable cycling over 500 cycles. This work demonstrates the effectiveness of heterochalcogen engineering in overcoming intrinsic limitation of Te-based chemistry and highlights a promising pathway to unlock multielectron chalcogen chemistry for the development of next-generation high-energy aqueous batteries.
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