Anion-mediated solvation structures and intercalation chemistry of aqueous zinc-ion electrolytes

化学 水溶液 无机化学 电解质 插层(化学) 溶剂化 电化学 配位复合体 溶解 晶体结构 电极 元动力学 电解 电极电位 协调数 介电谱 光谱学 标准电极电位 X射线吸收光谱法 离子 溶剂化壳 吸收光谱法 红外光谱学 结晶学 晶体化学
作者
Shiqiang Wei,Quan Zhou,Shuangming Chen,Yixiu Wang,P. B. Zhang,Wei Jiang,C. Q. Wang,Jiewu Cui,Xiaojun Wu,Li Song
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:123 (11): e2524561123-e2524561123 被引量:4
标识
DOI:10.1073/pnas.2524561123
摘要

Understanding solvent/solute-borne coordination structures and their impact on electrode intercalation chemistry is crucial for the rational design of high-performance electrolytes. Nevertheless, the anion coordination mechanisms governing solvation structures and their influence on electrochemical properties within aqueous zinc-ion electrolytes remain insufficiently explored. In this work, we systematically elucidate the Zn 2+ coordination environments in dilute aqueous zinc-ion electrolytes containing three different Zn salts (Zn(OTf) 2 , ZnCl 2 , and Zn(Ac) 2 ) using X-ray absorption fine structure (XAFS) spectroscopy and metadynamics simulations. Our results identify distinct average Zn 2+ coordination species: [Zn(H 2 O) 6 ] 2+ in Zn(OTf) 2 , [Zn(H 2 O) 5 Cl] + in ZnCl 2 , and [Zn(H 2 O) 4 (Ac)] + in Zn(Ac) 2 . Further employing synchrotron-based spectroscopy and in situ synchrotron radiation X-ray diffraction (SRXRD), we reveal that the electrode operating in Zn(OTf) 2 electrolyte exhibits minimal crystal lattice distortion upon Zn 2+ de/intercalation cycling, thereby delivering highly reversible electronic structure evolution and zinc-ion electrochemistry. In stark contrast, pronounced structural shape-shifting is observed in ZnCl 2 and Zn(Ac) 2 electrolytes, attributed to electrode dissolution and acetate anion coinsertion, respectively. These processes induce significant structural deterioration during cycling and compromise electrochemical reversibility. This study provides critical insights into the anion coordination chemistry within aqueous electrolytes and its profound influence on electrode intercalation behaviors, offering essential guidance for developing advanced high-performance aqueous batteries.
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