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Low-temperature methanol synthesis via (CO2 + CO) combined hydrogenation using Cu-ZnO/Al2O3 hybrid nanoparticle cluster
期刊文章

Low-temperature methanol synthesis via (CO2 + CO) combined hydrogenation using Cu-ZnO/Al2O3 hybrid nanoparticle cluster

Thanh Truc Nguyen HoangDe-Hao Tsai
Applied Catalysis A: General, 卷.645, 118844
09/2022

摘要

Catalyst CO CO2 Hybrid Methanol Catalysis Process Chemistry and Technology
Conversion of CO 2 into valuable fuel or chemical feedstock is important to sustainable technological development. Hydrogenation of CO 2 to methanol, preferably under a relatively low temperature and moderate pressure, is attractive. In this study, a combined (CO 2 + CO) hydrogenation process is proposed as an alternative two-stage route for methanol production. Cu-based hybrid catalysts supported on alumina nanoparticle clusters were developed for promoting methanol production. The results show an increase of ≈ 3.2 times in methanol space-time yield (STY MeOH ) at 220 °C by incorporating CO to the CO 2 hydrogenation process, and the maximum STY MeOH , 6.1 mmolg cat -1 h -1 , was achievable under a low-temperature (220 °C), moderate high-pressure operation (30 bar). The work demonstrates a rational design of hybrid nanostructured material to achieve superior catalytic performance in the combined (CO 2 + CO) hydrogenation. The mechanistic understanding gives insights into the interfacial catalysis by Cu-ZnO hybrid nanostructured materials for methanol production.

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