电解质
相间
电化学
水溶液
化学工程
材料科学
溶剂化
纳米技术
电极
金属
沉积(地质)
功能(生物学)
化学物理
化学
竞赛(生物学)
锌
阳离子聚合
电化学电位
离子
电化学电池
对分布函数
作者
Li Li,Hang Yang,Tengyu Yao,Yiming Zhang,Yicheng Tan,Chenglin Miao,Duo Chen,Jingyi Wang,Yunpeng Zhong,Xingsen Guo,Jianrui Feng,Adham Hashibon,Guangshe Li,Wei Han,Guanjie He
标识
DOI:10.1038/s41467-026-76659-1
摘要
Abstract While additive-induced modulation of solvation structure has emerged as an effective strategy to enhance the performance of aqueous zinc-ion batteries, the electrochemical mechanisms by which non-solvation additives interact with ion species within the electric double layer and their subsequent impact on solid electrolyte interphase evolution remain poorly understood. Here, we propose an anion-released interfacial engineering strategy that leverages the competitive spatial distribution between surface-affinitive anions and cationic regulators within the Stern layer. This competition governs additive accessibility to the interface and enables the construction of a robust, inorganic–organic hybrid interface. Combined with in situ spectra and theoretical simulations, we decouple the key kinetic processes in Zn deposition, revealing that fast Zn 2+ transport within the solid electrolyte interphase, coupled with moderated desolvation at the interface, underpins dendrite-free and highly reversible cycling. This study has the potential to establish a mechanistic framework for the interfacial function of non-solvating additives, thus offering refined insights into electrolyte design and interphase engineering for high-performance aqueous metal batteries.
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