PETROLEUM PROCESSING AND PETROCHEMICALS ›› 2026, Vol. 57 ›› Issue (7): 45-56.
Previous Articles Next Articles
Received:
Revised:
Online:
Published:
Abstract: In response to the problems of poor catalyst performance and numerous reaction by-products in the process of oxidizing 5-hydroxymethylfurfural (HMF) to prepare 2,5-furandicarboxylic acid (FDCA), graphite-like nitrogen-doped carbon (g-C3N4) is selected as the support material for the photocatalyst. Different morphologies of g-C3N4 support materials are prepared using urea and melamine as precursors, and FeOx-Au/g-C3N4 catalysts with different morphologies are prepared by loading FeOx-Au onto g-C3N4. The structural characteristics of different morphologies of FeOx-Au/g-C3N4 catalysts and their effects on the performance of the HMF photocatalytic oxidation reaction are characterized. The results show that the nanosheet FeOx-Au/g-C3N4 catalyst prepared using urea as the precursor have the narrowest band gap width, the most excellent ability to absorb visible light, the strongest ability of generating and migrating photo-generated electron-hole pairs onto the catalyst surface, and the strongest ability to produce reactive oxygen species that promote the oxidation of HMF. Under the action of the nanosheetFeOx-Au/g-C3N4 catalyst, the HMF conversion rate reaches 99.9% and the FDCA yield reaches 99.3% after 1 hour of light irradiation at a low HMF concentration (20 mmol/L); at a high HMF concentration (500 mmol/L), the HMF conversion rate is 99.9% and the FDCA yield is 90.2% after 11 hours of light irradiation; superoxide radicals and singlet oxygen are the reactive oxygen species for HMF oxidation, which can promote the oxidation of the aldehyde and hydroxyl groups of HMF molecules.
Key words: 5-hydroxymethylfurfural, 2,5-furanodicarboxylic acid, graphite phase carbon nitride, photocatalytic oxidation
/ Recommend
Add to citation manager EndNote|Ris|BibTeX
URL: http://www.sylzyhg.com/EN/
http://www.sylzyhg.com/EN/Y2026/V57/I7/45