Exploiting Cation Intercalating Chemistry to Catalyze Conversion-Type Reactions in Batteries

插层(化学) 氧化还原 过电位 催化作用 阴极 电化学 化学 分解 组合化学 材料科学 化学工程 无机化学 纳米技术 电极 有机化学 物理化学 工程类
作者
Weiyuan Huang,Jimin Qiu,Yuchen Ji,Wenguang Zhao,Zihang Dong,Kai Yang,Ming Yang,Qindong Chen,Ming‐Jian Zhang,Cong Lin,Kang Xu,Luyi Yang,Feng Pan
出处
期刊:ACS Nano [American Chemical Society]
卷期号:17 (6): 5570-5578 被引量:7
标识
DOI:10.1021/acsnano.2c11029
摘要

Effective harvest of electrochemical energy from insulating compounds serves as the key to unlocking the potential capacity from many materials that otherwise could not be exploited for energy storage. Herein, an effective strategy is proposed by employing LiCoO2, a widely commercialized positive electrode material in Li-ion batteries, as an efficient redox mediator to catalyze the decomposition of Na2CO3 via an intercalating mechanism. Differing from traditional redox mediation processes where reactions occur on the limited surface sites of catalysts, the electrochemically delithiated Li1–xCoO2 forms NayLi1–xCoO2 crystals, which act as a cation intercalating catalyzer that directs Na+ insertion–extraction and activates the reaction of Na2CO3 with carbon. Through altering the route of the mass transport process, such redox centers are delocalized throughout the bulk of LiCoO2, which ensures maximum active reaction sites. The decomposition of Na2CO3 thus accelerated significantly reduces the charging overpotential in Na-CO2 batteries; meanwhile, Na compensation can also be achieved for various Na-deficient cathode materials. Such a surface-induced catalyzing mechanism for conversion-type reactions, realized via cation intercalation chemistry, expands the boundary for material discovery and makes those conventionally unfeasible a rich source to explore for efficient utilization of chemical energy.
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