Unveiling the Role of Hydroxyls on Catalyst Surface in CO <sub>2</sub> Hydrogenation Reaction
Abstract
ABSTRACT Understanding and tailoring catalyst surface species is crucial for controlling reaction pathways and product selectivity. Herein, we demonstrate that triply bridging hydroxyl ( t OH) on ceria oxide surfaces profoundly alter the CO 2 hydrogenation pathway, shifting the major product from CO to CH 4 . Steam treatment of CeO 2 supported rhenium catalyst generates abundant t ‐OH species, leading to a tenfold increase in the CH 4 formation rate and ∼90% selectivity at 340°C and 30 bar. The operando spectroscopy combined with isotope‐labeling experiments provide direct evidences for the involvement of t ‐OH in CH 4 formation. Density functional theory calculations reveal that t ‐OH acts as a reactive proton donor, facilitating the hydrogenation of * HCOO to * HCOOH and thereby suppressing the decomposition of * HCOO to CO. Kinetic analysis further indicates that the presence of t ‐OH lowers the apparent activation energy from 118.8 kJ mol −1 to 73.2 kJ mol −1 , enabling a more efficient methanation pathway. This phenomenon is also discovered to be universal on other oxide‐supported Ni, Ru, and Rh catalysts. This work highlights the pivotal role of surface hydroxyls in CO 2 hydrogenation reaction and offers fundamental insights into engineering surface‐species to modulate product selectivity.
Article Details
Authors (8)
Bin Yang
Biao Gao
Yifu Wang
Limin Guo
Takashi Toyao
Hokkaido University , , N-21, W-10 , ,
Ken‐ichi Shimizu
Institute for Catalysis Hokkaido University Sapporo Japan
Lingxia Zhang
State Key Laboratory of High Performance Ceramics and Superfine Microstructure
Jianlin Shi
State Key Laboratory of High Performance Ceramics, Shanghai Institute of Ceramics