4.8 Article

Cu Nanoparticles Inlaid Mesoporous Al2O3 As a High-Performance Bifunctional Catalyst for Ethanol Synthesis via Dimethyl Oxalate Hydrogenation

期刊

ACS CATALYSIS
卷 4, 期 10, 页码 3612-3620

出版社

AMER CHEMICAL SOC
DOI: 10.1021/cs5009283

关键词

ethanol synthesis; copper; mesoporous Al2O3; stability; metal-acid; structure-activity relationship

资金

  1. Major State Basic Research Development Program of China (973 Program) [2012CB215305]

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Ethanol synthesis from syngas via dimethyl oxalate (DMO) hydrogenation is of crucial importance for environment- and energy-related applications. Herein, we designed the bifunctional Cu nanoparticle (NP) inlaid mesoporous Al2O3 catalyst and first applied it to ethanol synthesis with high efficiency. The catalyst was made based on the spatial restriction strategy by pinning the Cu NPs on mesoporous Al2O3 to conquer the sintering problem and facilitate the stability (>200 h at 270 degrees C), which has potential values in high-temperature and exothermic reactions. The plentiful pores, highly exposed and properly assembled Cu-acid sites, furnished the catalyst with high ethanol yield (similar to 94.9%). A structure-sensitive behavior that the intrinsic activity increases with the decreasing NP size was discussed. It was attributed to the change in metal acid interfacial sites, morphology, and electronic structure and balance of surface Cu-0-Cu+ species. The mechanism for DMO hydrogenation to ethanol involving activation of C=O, C-O, and O-H bands was also proposed. As cleavage of these bonds is a versatile tool to utilize bioderived molecules (e.g., polyols), the bifunctional catalysts can also be applied to hydrogenolysis of C-O bonds or etherification of O-H groups to produce various chemicals.

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