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Regulating the 4d-band center of Mo atoms in /3-Mo2C to promote lithium-oxygen reactions

Liwei Su, Xingyi Zhan, Zijin Tong, Hao Wu, Huan Chen, Chaoqi Shen, Lianbang Wang, Yuanhao Wang, Ming Li

Applied Surface Science(2024)

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Abstract
Lithium-air batteries have attracted much attention because of their high energy density. However, the sluggish kinetics of the Li-O reaction leads to high charge/discharge overpotentials and poor reversibility. Therefore, exploring efficient and low-cost cathode catalysts in promoting the Li-O reaction is crucial. Herein, the first principles calculation method, for the first time, is used to study the catalytic performance based on Pt-like /3-Mo2C by modifying the C sites with B, N, and O. The N modification decreases the d-band center of Mo atoms from 0.11 eV (/3-Mo2C) to-0.23 eV, resulting in optimal adsorption energy and charge transfer. In comparison, B and O have a negative effect. The N modification changes the rate-determining step of the entire catalytic process from the decomposition of LiO2 (/3-Mo2C, B-/3-Mo2C, O-/3-Mo2C) to the decomposition of Li2O2. The electronic structure and Bader charge analysis show that N-modified /3-Mo2C has a significantly lower work function than other structures, which increases the charge transfer ability between the catalyst and LiO2. This work provides a valuable scheme for adjusting the transition metal electronic structure in low-cost MXene for lithium-air batteries.
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Key words
Catalysts,Electrocatalytic mechanism,Lithium-oxygen batteries,d -band center,Surface modification
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