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Updated: Apr 9, 2026

Temperature-programmed Deoxygenation of Acetic Acid on Molybdenum Carbide Catalysts
Published on: February 7, 2017
Construction of oxygen vacancy-rich molybdenum-based catalysts: enhanced oxidative desulfurization activity via
Linyu You1, Mingyu Liao1, Gexian Li1
1State Key Laboratory of Green and Efficient Development of Phosphorus Resources, Hubei Key Laboratory of Novel Chemical Reactor and Green Chemical Technology, Wuhan Institute of Technology, Wuhan 430073, PR China.
Abstract:
In recent years, the regulatory mechanism of oxygen vacancies on oxidation desulfurization performance has gradually become a research hotspot. This work focused on the synthesis of an oxygen vacancy-rich MoO3/CeO2 catalyst. This catalyst was prepared by uniformly loading active species onto a cerium oxide (CeO2) support via a CTAB-assisted reverse microemulsion method. Comprehensive characterization techniques and density functional theory (DFT) calculations confirm that oxygen vacancies enhance the metal-support interaction. This promotes electron transfer from the support to molybdenum (Mo), converting Mo into electron-rich active sites, which in turn facilitates the conversion of H2O2 into hydroxyl radicals (•OH), hence playing a pivotal role in subsequent oxidation desulfurization (ODS) processes. ODS experiments demonstrated that the 25% MoO3/CeO2-350-2 catalyst exhibits outstanding catalytic activity, achieving complete desulfurization of dibenzothiophene (DBT) within 35 min under optimal conditions. It also displayed excellent desulfurization efficiency for other thiophene-derived sulfides. Moreover, it maintained a high conversion efficiency of 90.63% even after 9 cycles, indicating the outstanding stability of the catalyst. This work provides new insights for designing efficient oxygen vacancy-rich catalysts.
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