化学
催化作用
过电位
析氧
解吸
锡
电池(电)
氧气
屏障激活
过渡金属
无机化学
氮化物
金属
化学工程
物理化学
吸附
热力学
电极
有机化学
电化学
功率(物理)
工程类
物理
图层(电子)
作者
Jinzhen Zhu,Fan Wang,Beizhou Wang,Youwei Wang,Jianjun Liu,Wenqing Zhang,Zhaoyin Wen
摘要
Unraveling the descriptor of catalytic activity, which is related to physical properties of catalysts, is a major objective of catalysis research. In the present study, the first-principles calculations based on interfacial model were performed to study the oxygen evolution reaction mechanism of Li2O2 supported on active surfaces of transition-metal compounds (TMC: oxides, carbides, and nitrides). Our studies indicate that the O2 evolution and Li(+) desorption energies show linear and volcano relationships with surface acidity of catalysts, respectively. Therefore, the charging voltage and desorption energies of Li(+) and O2 over TMC could correlate with their corresponding surface acidity. It is found that certain materials with an appropriate surface acidity can achieve the high catalytic activity in reducing charging voltage and activation barrier of rate-determinant step. According to this correlation, CoO should have as active catalysis as Co3O4 in reducing charging overpotential, which is further confirmed by our comparative experimental studies. Co3O4, Mo2C, TiC, and TiN are predicted to have a relatively high catalytic activity, which is consistent with the previous experiments. The present study enables the rational design of catalysts with greater activity for charging reactions of Li-O2 battery.
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