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Catalytic hydrogenation of CO2 to methanol: Low temperature, high efficiency, and long working time

03.22.21 | Dalian Institute of Chemical Physics, Chinese Academy Sciences

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Efficient conversion of CO 2 is strategically significant for alleviating the energy crisis and achieving the goal of carbon neutrality. One promising conversion route is the hydrogenation of CO 2 to methanol using a renewable energy-based "green hydrogen" source.

Traditional metal oxide catalysts for this reaction typically require a high temperature (>300 o C), which tends to promote undesired reverse water-gas shift (RWGS) side reactions, thus producing a large amount of CO as the by-product.

Introduction of transition metal components onto metal oxides can promote the activation of H 2 , thereby reducing the reaction temperature, but this also facilitates excessive hydrogenation of CO 2 to CH 4 , leading to lowered methanol selectivity. Further improvement of the performance of conventional metal/metal oxide catalysts for low-temperature CO 2 hydrogenation to methanol is severely restricted by the tradeoff between their activity and selectivity.

Recently, a group led by Prof. DENG Dehui from the Dalian Institute of Chemical Physics (DICP) of the Chinese Academy of Sciences (CAS), in collaboration with Prof. WANG Ye from Xiamen University, achieved for the first time low-temperature high-efficiency hydrogenation of CO 2 to methanol, with a long working life over sulfur vacancy-rich few-layered MoS 2 , as well as remarkably higher activity and selectivity than those of the commercial Cu/ZnO/Al 2 O 3 catalyst.

Their work which was published in Nature Catalysis , opens up a new way for the conversion of CO 2 with low energy consumption and high efficiency.

They found that the sulfur vacancy-rich few-layered MoS 2 could simultaneously activate and diss o Ciate CO 2 and H 2 at low temperatures and even at room temperature, thereby facilitating the low-temperature hydrogenation of CO 2 to methanol with high activity and selectivity.

In addition, they found that the RWGS reaction and excessive hydrogenation of methanol to CH 4 were effectively suppressed. At 180 o C, 94.3% methanol selectivity for a CO 2 conversion of 12.5% was achieved over the catalyst; this result was better than that obtained with the commercial Cu/ZnO/Al 2 O 3 catalyst and previously reported catalysts.

The activity and selectivity were steadily maintained for over 3000 hours over the MoS 2 catalyst, rendering it a promising candidate for industrial applications. In situ characterizations combined with theoretical calculations demonstrated that the in-plane sulfur vacancies on MoS 2 were the active centers for catalyzing the highly selective hydrogenation of CO 2 to methanol.

"This work reveals the potential of in-plane vacancies in two-dimensional materials for catalysis and provides a novel strategy for the development of new catalysts to be used in CO 2 hydrogenation" said Prof. DENG.

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Nature Catalysis

10.1038/s41929-021-00584-3

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APA:
Dalian Institute of Chemical Physics, Chinese Academy Sciences. (2021, March 22). Catalytic hydrogenation of CO2 to methanol: Low temperature, high efficiency, and long working time. Brightsurf News. https://www.brightsurf.com/news/12DVV9X1/catalytic-hydrogenation-of-co2-to-methanol-low-temperature-high-efficiency-and-long-working-time.html
MLA:
"Catalytic hydrogenation of CO2 to methanol: Low temperature, high efficiency, and long working time." Brightsurf News, Mar. 22 2021, https://www.brightsurf.com/news/12DVV9X1/catalytic-hydrogenation-of-co2-to-methanol-low-temperature-high-efficiency-and-long-working-time.html.