尖晶石
电催化剂
材料科学
钴
催化作用
析氧
纳米晶材料
化学工程
锰
纳米颗粒
结晶
相(物质)
氧气储存
氧化钴
电化学
纳米晶
纳米技术
化学
物理化学
冶金
电极
有机化学
工程类
生物化学
作者
Chun Li,Xiaopeng Han,Fangyi Cheng,Yuxiang Hu,Chengcheng Chen,Jun Chen
摘要
Abstract Spinel-type oxides are technologically important in many fields, including electronics, magnetism, catalysis and electrochemical energy storage and conversion. Typically, these materials are prepared by conventional ceramic routes that are energy consuming and offer limited control over shape and size. Moreover, for mixed-metal oxide spinels (for example, Co x Mn 3− x O 4 ), the crystallographic phase sensitively correlates with the metal ratio, posing great challenges to synthesize active product with simultaneously tuned phase and composition. Here we report a general synthesis of ultrasmall cobalt manganese spinels with tailored structural symmetry and composition through facile solution-based oxidation–precipitation and insertion–crystallization process at modest condition. As an example application, the nanocrystalline spinels catalyse the oxygen reduction/evolution reactions, showing phase and composition co-dependent performance. Furthermore, the mild synthetic strategy allows the formation of homogeneous and strongly coupled spinel/carbon nanocomposites, which exhibit comparable activity but superior durability to Pt/C and serve as efficient catalysts to build rechargeable Zn–air and Li–air batteries.
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