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Article Abstract

The direct synthesis of methanol via the hydrogenation of CO, if performed efficiently and selectively, is potentially a powerful technology for CO mitigation. Here, we develop an active and selective Cu-Zn/SiO catalyst for the hydrogenation of CO by introducing copper and zinc onto dehydroxylated silica via surface organometallic chemistry and atomic layer deposition, respectively. At 230 °C and 25 bar, the optimized catalyst shows an intrinsic methanol formation rate of 4.3 g h g and selectivity to methanol of 83%, with a space-time yield of 0.073 g h g at a contact time of 0.06 s g mL. X-ray absorption spectroscopy at the Cu and Zn K-edges and X-ray photoelectron spectroscopy studies reveal that the CuZn alloy displays reactive metal support interactions; that is, it is stable under H atmosphere and unstable under conditions of CO hydrogenation, indicating that the dealloyed structure contains the sites promoting methanol synthesis. While solid-state nuclear magnetic resonance studies identify methoxy species as the main stable surface adsorbate, transient operando diffuse reflectance infrared Fourier transform spectroscopy indicates that μ-HCOO*(ZnO) species that form on the Cu-Zn/SiO catalyst are hydrogenated to methanol faster than the μ-HCOO*(Cu) species that are found in the Zn-free Cu/SiO catalyst, supporting the role of Zn in providing a higher activity in the Cu-Zn system.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10523371PMC
http://dx.doi.org/10.1021/jacsau.3c00319DOI Listing

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