Oxygen Vacancy-Induced Metal-Support Interactions in AuPd/ZrO Catalysts for Boosting 5-Hydroxymethylfurfural Oxidation.

Inorg Chem

Advanced Chemical Engineering Laboratory of Green Materials and Energy of Jiangsu Province, School of Chemistry and Chemical Engineering, Institute of Green Chemistry and Chemical Technology, Jiangsu University, Xuefu Road 301, Zhenjiang 212013, P. R. China.

Published: September 2023

The construction of strong metal-support interactions in oxide-supported noble metal nanocatalysts has been considered an emerging and efficient way in improving catalytic performance in biomass-upgrading reactions. Herein, a citric acid (CA)-assisted synthesized ZrO layer with improved oxygen vacancy (O) concentrations on a natural clay mineral of halloysite nanotubes (HNTs) was designed. Moreover, AuPd/ZrO@HNTs-zCA catalysts were prepared by loading AuPd bimetal and employed for aerobic oxidation of the lignocellulosic biomass-derived 5-hydroxymethylfurfural (HMF) platform to the bioplastic monomer 2,5-furandicarboxylic acid (FDCA) with water as the solvent. The results of catalytic experiments revealed that the AuPd/ZrO@HNTs-1.0CA catalyst exhibited excellent catalytic activity at 0.5 MPa O, with a satisfactory FDCA yield of 99.5% and outstanding FDCA formation rate of 1057.9 mmol·g·h. The improved O concentration in the ZrO support enhanced the adsorption and activation ability of the catalyst for O, and a higher Lewis acid concentration provided a stronger adsorption ability of the catalyst for reaction substrates. Besides, the synergistic effect of AuPd bimetallic nanoparticles steered the tandem oxidation of aldehyde and alcohol groups in HMF and accelerated the rate-determining step. More importantly, the relationship between the O concentration and catalytic performance also demonstrated that the enhanced catalytic activity for HMF oxidation was mainly attributed to the active interface of AuPd-ZrO. This work offers fresh insights into rationally designing oxygen vacancy-driven strong interactions between the oxide support and noble nanoparticles for the catalytic upgrade of biomass platform chemicals.

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http://dx.doi.org/10.1021/acs.inorgchem.3c02473DOI Listing

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