结晶
电化学
水溶液
化学
电化学能量转换
分子
电解质
材料科学
化学物理
电化学电位
纳米技术
化学工程
无机化学
质子输运
电化学储能
反应机理
作者
Stephen Fuller,Evalyn Wilber,S. Kelley Moseley,Jingxu Kent Zheng
标识
DOI:10.1021/acsmaterialslett.5c00736
摘要
Compared to other synthetic routes, electrochemical synthesis offers unique control of the reaction rate, or current density J . Recently, interest in electrochemical crystallization from aqueous electrolytes has resurged, driven in part by water’s inherent reactivity. Spontaneous proton production (H 2 O ↔ H + + OH – ) presents both challenges and unique opportunities. In this Review, we first explore the key physicochemical processes involved in aqueous electrocrystallization of metals, a simpler group of materials with well-defined lattice structures. We then turn our attention to critical considerations for growing more complex compounds, characterized by intricate lattice symmetries and stoichiometries. We argue that achieving precision control in aqueous electrochemical crystallization requires a holistic understanding of proton activity and the ability to regulate interfacial chemical kinetics and transport phenomena across multiple length scales. With such control, electrochemical crystallization in aqueous systems offers a sustainable platform for the precision synthesis of materials essential to energy technologies and sustainability.
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