4.8 Article

Construction of Cu/ZrO2/Al2O3 composites for ethanol synthesis: Synergies of ternary sites for cascade reaction

Journal

APPLIED CATALYSIS B-ENVIRONMENTAL
Volume 166, Issue -, Pages 551-559

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.apcatb.2014.12.015

Keywords

Hydrogenation; Hydrogenolysis; Ethanol; Cu catalyst; Synergistic effects

Funding

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

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The hydrogenation of dimethyl oxalate (DMO) to ethanol involves the stepwise hydrogenation of C=O bonds and hydrogenolysis of C-O bonds. In the present work, the assembly of ternary active sites (Cu, ZrO2, Al2O3 sites) for this reaction was investigated. The calcination temperature was demonstrated to have profound influences on the catalytic performance, evolutions of texture and structure properties and functionality of active phases of the ternary catalysts with similar compositions. The Cu/ZrO2/Al2O3 catalyst calcined at a high temperature of 750 degrees C exhibited an ethanol yield'up to 97.4% and stable performance (>200 h). Key to success is the concurrence of the stable metallic Cu sites with more proportions of Cu+ sites, active crystalline ZrO2 phases and sufficient acid sites which were generated upon high temperature calcination. The high-temperature calcination annealed Cu particles into large ones, facilitating the high stability. Another factor for the good stability is the formation of CuAl2O4 spinel and the resulted strong interactions between Cu and Al2O3 after reduction. Overall, the design of efficient multifunctional catalysts for hydrogenation/hydrogenolysis of C=O/C-O bonds lies in the adequate assembly and modulation of textural, structural and surface properties of catalysts. The structure-performance relationships were well elucidated by the analysis of structural and surface properties of active phases and catalytic performance, which provide more rational choices for making high-performance catalysts for C=O hydrogenation and C-O hydrogenolysis reactions. (C) 2014 Elsevier B.V. All rights reserved.

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