催化作用
过渡金属
密度泛函理论
化学
氧化态
Atom(片上系统)
过渡状态
从头算
分子动力学
计算化学
物理化学
结晶学
计算机科学
生物化学
嵌入式系统
有机化学
作者
Xingchen Jin,Ruoqi Zhang,Delu Gao,Dunyou Wang
标识
DOI:10.1021/acs.jpclett.5c01442
摘要
Efficient CO oxidation is critical for environmental catalysis. Here, we investigate CO oxidation on single transition metal atoms (TM 1 = Fe, Co, Ni, Ru, Rh, Pd, Os, Ir, and Pt) supported by Bi 2 O 2 S using density functional theory and ab initio molecular dynamics. The reaction proceeds exclusively via the Eley–Rideal mechanism, except for Pd, with activation barriers ranging from 3.6 to 43.7 kJ/mol. Group 9 (Co, Rh, and Ir) and 10 (Ni and Pt) metals demonstrate superior performance, exhibiting ultralow barriers below 10 kJ/mol. We identify two electronic descriptors: a static descriptor quantifying pre-transition-state O–TM 1 bond stability, which is inversely correlated with activation barriers, and a dynamic descriptor tracking the shift of the occupied orbital center from the pre-transition-state intermediates to transition states, directly linked to barrier heights. Bi 2 O 2 S-supported single-atom catalysts enable ultralow-barrier CO oxidation, indicating great potential for environmental applications and providing design principles for efficient single-atom catalysts for CO oxidation.
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