Phosphorization-Induced “Fence Effect” on the Active Hydrogen Species Migration Enables Tunable CO 2 Hydrogenation Selectivity
作者:Chunpeng Wu, Jiahui Shen, Xingda An, Zhiyi Wu, Shuairen Qian, Shumin Zhang, Zhiqiang Wang, Bin Song, Yi Cheng, Binhang Yan, Tsun‐Kong Sham, Xiaohong Zhang, Chaoran Li, Kai Feng, Le He · 发表于:ACS Catalysis · 年份:2024 · DOI:10.1021/acscatal.4c00742 · 被引用次数:23 · 研究领域:Catalysts for Methane Reforming、Ammonia Synthesis and Nitrogen Reduction、Catalytic Processes in Materials Science
Incorporating phosphorus (P) into the active metals of a catalyst is an effective strategy to enhance the catalytic performance. However, the mechanisms underlying the influence of the introduced phosphorus species on catalytic performance remain largely unknown. Herein, we observe a pronounced shift in the product selectivity of the CO 2 hydrogenation from CH 4 to CO upon introducing P into the Ru/SiO 2 catalysts. This alteration in product selectivity is attributed to the role of introduced P as a “fence” hindering the migration of active H species. The adsorbed CO, a key intermediate species for CO 2 methanation, is preferentially desorbed before H species cross the “fence” for further hydrogenation, thereby weakening the H 2 -assisted CO activation process and consequently inhibiting CH 4 generation. Our findings provide in-depth insights into the origin of phosphorization-induced modulation of product selectivity in CO 2 hydrogenation. Furthermore, the concept of phosphorization-induced “fence effect” opens a promising avenue for catalyst design in various industrial hydrogenation processes.