Synergistic role of Cu0-Cu+ sites and oxygen vacancies on MOF-derived Cu supported CeO2 for enhancing hydrogenation of cyclohexyl acetate to cyclohexanol

Shangpu Zhuang, Yilin Lei, Fan Xue, Tao Wei, Jiahui Chu, Mifen Cui, Zhuxiu Zhang, Ruiping Wei, Jihai Tang, Xu Qiao

Research output: Contribution to journalArticlepeer-review

Abstract

Unraveling the synergistic interplay between Cu0/Cu+ and support sites in Cu-based catalysts, coupled with oxygen vacancy-mediated active site modulation and their impact on hydrogenation performance metrics, remains a critical challenge in heterogeneous catalysis. Herein, we engineered a family of MOF-derived Cu/CeO2 catalysts with tunable Cu loadings and oxygen vacancy(OV) concentrations, featuring Cu0-Cu+-OV interfacial sites, through a MOF-mediated pyrolysis strategy. Operando DRIFTS, XPS, and Raman analyses revealed dynamic restructuring of active sites during hydrogenation of cyclohexyl acetate. The optimized catalyst achieved 98.0 % substrate conversion and 97.3 % cyclohexanol selectivity at 250 ℃ under 3 MPa H2, exhibiting a TOF 2.8-fold higher than conventional Cu/CeO2. The results indicate that the superior catalytic performance of Cu/CeO2-MOF should be attributed to the synergistic effects of Cu+, Cu0, and OV. This synergy enhances the ability of catalysts to adsorb and activate cyclohexanone, as well as its hydrogen dissociation capability. Further analysis indicates that OV exerts a direct influence on product selectivity. Moreover, the concentration of OV modulates the ratio of Cu+/(Cu++Cu0), which significantly affects conversion efficiency of the reaction. This work introduces an innovative approach to designing the electronic structure of copper-based catalysts, thereby optimizing the hydrogenation reactions of carbonyl compounds.

Original languageEnglish
Article number163840
JournalApplied Surface Science
Volume709
DOIs
StatePublished - 15 Nov 2025

Keywords

  • Cu-Cu
  • Hydrogenation
  • Metal–support interactions
  • MOF-derived
  • Oxygen vacancy
  • Synergistic catalysis

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