催化作用
合理设计
选择性
化学
亚稳态
锐钛矿
金红石
动力学
铑
金属
协同催化
分子动力学
多相催化
光化学
氧化还原
过渡金属
反应机理
反应中间体
化学动力学
无机化学
立体化学
化学工程
电子效应
贵金属
作者
Shidong Bao,Wenxu Deng,shourong zheng,Xixin Qu,Heyun Fu
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2026-03-18
卷期号:16 (7): 7071-7082
标识
DOI:10.1021/acscatal.6c00939
摘要
Revealing the multiple interactions in heterogeneous catalysts and the potential structural evolution under the reaction conditions is crucial for the rational design of catalysts. Herein, we elucidate the complex interactions within P-doped Rh catalysts supported on rutile TiO 2 (r-TiO 2 ) and anatase TiO 2 (a-TiO 2 ) as well as their structural evolution behavior during CO 2 hydrogenation. Before P-doping, Rh/r-TiO 2 with Rh ensemble sites primarily catalyzes CO 2 methanation, while Rh/a-TiO 2 with TiO x -encapsulated Rh sites originating from strong metal–support interaction (SMSI) shows high CO selectivity. P-doping into Rh/r-TiO 2 transforms Rh ensemble sites into separated Rh sites, switching the catalytic selectivity from CH 4 to CO at low reaction temperatures. Interestingly, the selectivity reverses from 100% CO to 95% CH 4 with increasing temperature, demonstrating a dynamic structural evolution. The metastable P-doped Rh species is reconstructed into Rh ensemble and phosphate species due to electronic metal–support interaction and O* intermediate oxidation in a weakly oxidative reaction atmosphere, while it can be regenerated in a H 2 atmosphere. For the a-TiO 2 -supported P-doped Rh catalyst, moderate TiO x encapsulation originating from SMSI contributes to stabilizing the P-doped Rh species during CO 2 hydrogenation. Our study reveals that regulating metal–support interaction within TiO 2 -supported P-doped Rh catalysts can modulate their structural evolution behavior during the reaction, guiding the rational design of P-doped metal catalysts on reducible supports.
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