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A Ce-CuZn catalyst with abundant Cu/Zn-OV-Ce active sites for CO2 hydrogenation to methanol.


ABSTRACT: CO2 hydrogenation to chemicals and fuels is a significant approach for achieving carbon neutrality. It is essential to rationally design the chemical structure and catalytic active sites towards the development of efficient catalysts. Here we show a Ce-CuZn catalyst with enriched Cu/Zn-OV-Ce active sites fabricated through the atomic-level substitution of Cu and Zn into Ce-MOF precursor. The Ce-CuZn catalyst exhibits a high methanol selectivity of 71.1% and a space-time yield of methanol up to 400.3 g·kgcat-1·h-1 with excellent stability for 170 h at 260 °C, comparable to that of the state-of-the-art CuZnAl catalysts. Controlled experiments and DFT calculations confirm that the incorporation of Cu and Zn into CeO2 with abundant oxygen vacancies can facilitate H2 dissociation energetically and thus improve CO2 hydrogenation over the Ce-CuZn catalyst via formate intermediates. This work offers an atomic-level design strategy for constructing efficient multi-metal catalysts for methanol synthesis through precise control of active sites.

SUBMITTER: Ye R 

PROVIDER: S-EPMC10924954 | biostudies-literature | 2024 Mar

REPOSITORIES: biostudies-literature

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A Ce-CuZn catalyst with abundant Cu/Zn-O<sub>V</sub>-Ce active sites for CO<sub>2</sub> hydrogenation to methanol.

Ye Runping R   Ma Lixuan L   Mao Jianing J   Wang Xinyao X   Hong Xiaoling X   Gallo Alessandro A   Ma Yanfu Y   Luo Wenhao W   Wang Baojun B   Zhang Riguang R   Duyar Melis Seher MS   Jiang Zheng Z   Liu Jian J  

Nature communications 20240309 1


CO<sub>2</sub> hydrogenation to chemicals and fuels is a significant approach for achieving carbon neutrality. It is essential to rationally design the chemical structure and catalytic active sites towards the development of efficient catalysts. Here we show a Ce-CuZn catalyst with enriched Cu/Zn-O<sub>V</sub>-Ce active sites fabricated through the atomic-level substitution of Cu and Zn into Ce-MOF precursor. The Ce-CuZn catalyst exhibits a high methanol selectivity of 71.1% and a space-time yie  ...[more]

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