氧化物
吸附
催化作用
氧气
解吸
金属
选择性
复合氧化物
化学
无机化学
材料科学
合成气
空位缺陷
一氧化碳
过渡金属
氧化铈
工作(物理)
光化学
化学吸附
化学工程
协同催化
作者
Rankun Zhang,Qi Wang,Xiaoyu Liang,Le Lin,Changping Liu,Dongqing Wang,Xiang‐Kui Gu,Rentao Mu,Qiang Fu
摘要
ABSTRACT Oxide catalysts often outperform their metal counterparts in selectivity for CO hydrogenation reactions. However, their wide applications are hindered by inherently lower CO conversion rates, primarily attributed to the weak adsorption of CO on oxide surfaces. In this work, we report that the combination of hydroxyl (OH) groups and oxygen vacancies (V O ) on a single‐layer MnO x surface creates a synergistic effect that facilitates strong CO adsorption. As such, CO can stably adsorb on the MnO x surface under ultra‐high vacuum at room temperature, with a desorption temperature exceeding that on the benchmark Pt(111) surface. In contrast, CO fails to adsorb on MnO x surfaces containing only OH groups or only V O . Moreover, the CO coverage on the MnO x surface can be tuned by adjusting the relative concentrations of OH groups and V O . Theoretical calculations reveal that the presence of neighbouring OH further increases charge accumulation at Mn sites surrounded with V O , which provides more electrons for CO–surface bonding and consequently strengthens CO adsorption. This work highlights the cooperative role of surface OH and V O in enhancing CO adsorption, providing valuable insight into CO activation on metal oxide surfaces and offering guidance for improving syngas conversion reactions.
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