The aerobic oxidation of HMF to FDCA offers a promising pathway for biomass utilization, especially for producing the biobased polymer PEF. Herein, a series of Mn2O3 with various specific surface areas were prepared via a facile two-step process. The catalytic results demonstrated that Mn2O3 exhibited a higher intrinsic activity (3.3 mgFDCA·m–2·h–1) than common manganese oxides, such as Mn3O4 and different crystalline phases of MnO2 (α, β, and δ). Under optimized conditions, the Mn2O3-140-A catalyst achieved an FDCA selectivity of 91.3% at ∼100% HMF conversion, with a carbon balance of 97.8%. Combined characterization and catalytic testing revealed a clear positive linear correlation between specific surface area and activity, attributed to the increased concentration of accessible active sites associated with oxygen vacancies. Kinetic analysis identified the slowest steps in the two reaction pathways (DFF path and HMFCA path) and their dependence on reaction temperature. These findings demonstrate that Mn2O3 can act as a promising catalyst for HMF aerobic oxidation to FDCA, and provide valuable insights for the design of advanced Mn2O3 catalysts.
Zhao et al. (Fri,) studied this question.