4.7 Article

PdCu supported on dendritic mesoporous CexZr1-xO2 as superior catalysts to boost CO2 hydrogenation to methanol

Journal

JOURNAL OF COLLOID AND INTERFACE SCIENCE
Volume 611, Issue -, Pages 739-751

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2021.11.172

Keywords

Dendritic PdCu/Ce0.3Zr0.7O2 catalyst; Hydrogen spillover; Oxygen vacancy; CO2 hydrogenation; Methanol

Funding

  1. King Abdullah University of Science and Technology (KAUST)

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A dendritic PdCu/Ce0.3Zr0.7O2 catalyst with uniform spherical morphology was prepared and used for CO2 hydrogenation to methanol. The catalyst exhibited open dendritic pore channels and small particle sizes, which facilitated the diffusion process and increased the accessibility between active sites and reactants. The catalyst showed improved catalytic performance, with high CO2 conversion, methanol yield, PdCu-TOFMeOH, and long-term stability.
A dendritic PdCu/Ce0.3Zr0.7O2 (PdCu/CZ-3) catalyst with uniform spherical morphology was prepared for boosting the catalytic performance of CO2 hydrogenation to methanol (MeOH). The open dendritic pore channels and small particle sizes could reduce not only the diffuse resistance of reactants and products but also increase the accessibility between the active sites (PdCu and oxygen vacancy) and the reactants (H-2 and CO2). More spillover hydrogen could be generated due to the highly dispersed PdCu active metals over the PdCu/CZ-3 catalyst. PdCu/CZ-3 can stimulate the generation of more Ce3+ cations, which is beneficial to produce more oxygen vacancies on the surface of the CZ-3 composite. Spillover hydrogen and oxygen vacancy could promote the formate and methoxy routes over PdCu/CZ-3, the primary intermediates producing MeOH. PdCu/CZ-3 displayed the highest CO2 conversions (25.5 %), highest MeOH yield (6.4 %), highest PdCu-TOFMeOH (7.7 h(-1)) and superior 100 h long-term stability than those of other PdCu/CexZr1-xO2 analogs and the reference PdCu/CeO2 and PdCu/ZrO2 catalysts. Density functional theory (DFT) calculations and in situ DRIFTS were performed to investigate the CO2-MeOH hydrogenation mechanism. (C) 2021 Elsevier Inc. All rights reserved.

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