Electron Structure Tuned Oxygen Vacancy‐Rich AuPd/CeO2 for Enhancing 5‐Hydroxymethylfurfural Oxidation

Author:

Wei Yanan1,Pan Jianming2,Yan Xu3,Mao Yanli3,Zhang Yunlei2ORCID

Affiliation:

1. National-Local Joint Engineering Research Center of Biomass Refining and High-Quality Utilization Changzhou University Changzhou 213159 PR China

2. Institute of Green Chemistry and Chemical Technology School of Chemistry and Chemical Engineering Jiangsu University Zhenjiang 212013 PR China

3. Henan International Joint Laboratory of Green Low Carbon Water Treatment Technology and Water Resources Utilization School of Municipal and Environmental Engineering Henan University of Urban Construction Pingdingshan 466002 PR China

Abstract

AbstractThe design of high activity catalyst for the efficiently conversion of 5‐hydroxymethylfurfural (HMF) to 2,5‐furandicarboxylic acid (FDCA) gains great interest. The rationally tailoring of electronic structure directly affects the interaction between catalysts and organic substrates, especially molecular oxygen as the oxidant. This work, the bimetallic catalysts AuPd/CeO2 were prepared by the combining method of chemical reduction and photo‐deposition, effectively concerting charge between Au and Pd and forming the electron‐rich state of Au. The increasing of oxygen vacancy concentration of CeO2 by acidic treatment can facilitate the adsorption of HMF for catalysts and enhance the yield of FDCA (99.0 %). Moreover, a series of experiment results combining with density functional theory calculation illustrated that the oxidation performance of catalyst in HMF conversion was strongly related to the electronic state of interfacial Au−Pd−CeO2. Furthermore, the electron‐rich state sites strengthen the adsorption and activation of molecular oxygen, greatly promoting the elimination of β‐hydride for the selective oxidation of 5‐hydroxymethyl‐2‐furancarboxylic acid (HMFCA) to FDCA, accompanied with an outgoing FDCA formation rate of 13.21 mmol ⋅ g−1 ⋅ min−1 at 80 °C. The perception exhibited in this research could be benefit to understanding the effects of electronic state for interfacial sites and designing excellent catalysts for the oxidation of HMF.

Funder

Natural Science Foundation of Jiangsu Province

China Postdoctoral Science Foundation

Jiangsu University

Changzhou University

Publisher

Wiley

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