Investigation of Solvent and Stirring-Assisted Morphologically Tuned CuO-ZnO-CeO2 Catalyst for CO2 Hydrogenation to
Suresh Kanuri1, Satyapaul A Singh1, Srikanta Dinda1
1Department of Chemical Engineering, Birla Institute of Technology and Science (BITS) Pilani, Hyderabad Campus, Hyderabad, Telangana 500078, India.
Abstract:
The combustion of fossil fuels and accelerated industrialization are primary sources of excessive carbon dioxide emissions and are major contributors to the greenhouse effect. As a result, converting CO2 into value-added fuels such as methanol through hydrogenation has emerged as a promising approach for both carbon mitigation and renewable energy production. In this work, CuO/ZnO/CeO2 catalysts with various morphologies were synthesized by using three distinct methods: solid-state heating (SSH), solvothermal (ST), and stirring-assisted double-solvent hydrothermal (SHT) synthesis protocols. Different analytical techniques, such as XRD, FE-SEM, BET, XPS, and H2-TPR, were used to extensively characterize the catalysts. Hexagonal rods, nanowires, flakes, rectangular tubes, and bush-like distinct morphologies were observed through SEM analysis. In situ DRIFTS further identified key surface intermediates, including formate, dioxymethylene, and methoxy species, and confirmed that the stabilization of formate and methoxy species is critical for methanol formation. The catalytic performance was then evaluated in a bench-scale fixed-bed flow reactor. Among the synthesized catalysts, the catalyst prepared by the solvothermal method exhibited the highest methanol turnover frequency (TOFMeOH). Overall, these results demonstrate that the synthesis method not only governs the morphology, dispersion, and specific surface area of Cu but also influences the catalytic efficiency for the hydrogenation of CO2 to methanol.
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