电解质
氧化还原
动力学
材料科学
水溶液
化学工程
共价键
电化学
降级(电信)
纳米技术
无机化学
能量密度
储能
耐久性
工作(物理)
电极
水介质
化学动力学
活化能
作者
Jie Xu,Qingyu Dai,Rui Yang,Yuanhong Yu,Xianyu Song,Donghong Wang,Lei Zhu,Xiangfeng Chu,Yongjie Cao,Yonggang Wang
摘要
ABSTRACT Activating four‐electron iodine chemistry in zinc–iodine (Zn–I 2 ) batteries promises higher energy density, yet remains challenged by polyiodide shuttling and the instability of high‐valence I + species. Here, we demonstrate that a customized NH 4 Cl‐based aqueous electrolyte, coupled with an ion‐replenishing Cl‐functionalized covalent organic framework (COF–Cl) interlayer, enables long‐lived four‐electron Zn–I 2 batteries. The optimized electrolyte promotes I + –Cl − complexation, while the COF–Cl interlayer immobilizes polyiodides and continuously releases Cl − to stabilize I + against hydrolysis, collectively ensuring reversible I − /I 0 /I + redox conversion. In situ spectroscopic and theoretical analyses reveal accelerated high‐valence redox kinetics and strong I + /polyiodide interactions. As a result, the optimized cell delivers high energy density (278 Wh kg − 1 ), fast kinetics (128 mAh g − 1 at 10 A g − 1 ), and remarkable cycling durability over 45000 cycles at –5°C with an ultralow decay rate of 0.00039% per cycle, with the strategy further validated in pouch cells under low‐temperature conditions. This work establishes an effective ion‐replenishing interlayer–electrolyte strategy for robust, high‐energy aqueous Zn–I 2 batteries.
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