氧化钒
电极
材料科学
水溶液
阴极
氧化物
钒
化学工程
过渡金属
电化学
纳米技术
金属
无机化学
阳极
析氧
储能
降级(电信)
结构稳定性
高压
氧化钛
高能
纳米颗粒
电催化剂
共价键
联轴节(管道)
作者
F C Zhang,Hanqin Yin,Aijun Du,Qianqin Zhou,Chao Zhang,Jian Bai,Ziqin Tan,Ting Liao,Yanhui Song,Ziqi Sun
标识
DOI:10.1038/s41467-026-75617-1
摘要
Aqueous zinc-ion batteries are promising sustainable energy-storage systems, yet their practical deployment is hindered by positive electrode structural instability during cycling, which has received less attention. Recognizing the critical role of orbital coupling in metal oxides, we regulate the high-voltage stability of vanadium oxide positive electrodes by modulating the electronic state of V in V2O3. Fluorine incorporation into the V-O framework induces asymmetric electron distribution, enhancing V-O orbital overlap and strengthening covalent interactions through reinforced π- and σ-bonding. This increased covalency reduces the basicity of axial oxygen atoms, suppressing proton attack and mitigating structural distortion at high charging voltages. F-V2O3 exhibits enhanced cycling stability, retaining 80% capacity over 60,000 cycles at 3 A g−1. Furthermore, Ah-level pouch cell delivers specific energy (based on all electrode materials) of 95 Wh kg−1 at 50 mA g−1. A practical pouch-cell pack with a 3.7 V output successfully powers drones. Here, we show the importance of covalency engineering for stabilizing oxide positive electrodes. Aqueous zinc-ion batteries are limited by cathode instability during cycling. Here, authors stabilize vanadium oxide via fluorine incorporation, where enhanced covalency suppresses structural degradation, enabling 60,000 cycles long lifetimes and practical pouch cells powering drones.
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