Production of methanol from anthropogenic carbon dioxide (CO) is a promising chemical process that can alleviate both the environmental burden and the dependence on fossil fuels. In catalytic CO hydrogenation to methanol, reduction of CO to intermediate species is generally considered to be a crucial step. It is of great significance to design and develop advanced heterogeneous catalysts and to engineer the surface structures to promote CO-to-methanol conversion. We herein report an oxygen-defective molybdenum sub-oxide coupled with Pt nanoparticles (Pt/H MoO ) which affords high methanol yield with a methanol formation rate of 1.53 mmol g h in liquid-phase CO hydrogenation under relatively mild reaction conditions (total 4.0 MPa, 200 °C), outperforming other oxide-supported Pt catalysts in terms of both the yield and selectivity for methanol. Experiments and comprehensive analyses including X-ray absorption fine structure (XAFS), diffuse reflectance infrared Fourier transform (DRIFT) spectroscopy and density functional theory (DFT) calculations reveal that both abundant surface oxygen vacancies (V) and the redox ability of Mo species in quasi-stable H MoO confer the catalyst with enhanced adsorption and activation capability to subsequently transform CO to methanol. Moreover, the Pt NPs act as H dissociation sites to regenerate oxygen vacancies and as hydrogenation sites for the CO intermediate to finally afford methanol. Based on the experimental and computational studies, an oxygen-vacancy-mediated "reverse Mars-van Krevelen (M-vK)" mechanism is proposed. This study affords a new strategy for the design and development of an efficient heterogeneous catalyst for CO conversion.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8317622PMC
http://dx.doi.org/10.1039/d1sc02550cDOI Listing

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