位阻效应
锌
吸附
阳极
法拉第效率
电解质
溶剂化
材料科学
分子
化学工程
水溶液
无机化学
离子
电偶阳极
化学
电池(电)
电动现象
溶剂化壳
咪唑
密度泛函理论
锡
反离子
作者
Haohan Li,Yì Wáng,Xin Li,Bochuan Tan,Lei Guo,Wenpo Li
出处
期刊:Small
[Wiley]
日期:2026-06-03
卷期号:: e74075-e74075
摘要
ABSTRACT The electrolyte–electrode interface critically governs the performance of aqueous zinc‐ion batteries (AZIBs), where electrolyte‐mediated interfacial regulation is pivotal. Herein, 5‐benzimidazolecarboxylic acid (BCA) is introduced as a novel trace electrolyte additive for highly reversible, dendrite‐free zinc anodes. The BCA additive containing both imidazole and carboxyl functional groups can not only provide strong coordination with Zn 2+ to reconstruct the solvation shell of Zn 2+ and regulate the zinc ion flux by improving the bulk steric hindrance, but also rapidly adsorb onto the Zn anode to form a multifunctional molecular protective layer, reducing the contact of H 2 O by increasing interfacial steric hindrance, while simultaneously promoting desolvation of the zinc ions from the solvent. Consequently, BCA‐enhanced symmetric cells achieve exceptional cycling stability even at high current densities, operating over 5000 h (5 mA cm −2 ) and exceeding 1200 h (10 mA cm −2 ), while asymmetric cells deliver an ultralong lifespan exceeding 3400 h with a 99.84% average coulombic efficiency. Additionally, the Zn||MnO 2 cell retains 70.7% capacity after 1000 cycles (1C). And a high‐mass‐loading pouch battery exhibits stable cycling and powers a 3 V LED. This study provides profound insights into interfacial engineering for high‐performance AZIBs.
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