A binary catalytic system of sulfonated metal–organic frameworks and deep eutectic solvents towards highly efficient synthesis of 5-hydroxymethylfurfural from fructose
Publication date
2024-08-01
Authors
Li, Mingfu
Huai, Liyuan
Zhang, Yingchuan
Ma, Hongli
Zhang, Pingjun
Xu, Feixiang
Zhang, Jian
Jiang, Liqun
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Advisors
Supervisors
Document Type
Article
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taverne
Abstract
The green synthesis of 5-hydroxymethylfurfural (HMF) from biomass feedstocks is a crucial step for the development of sustainable fuels, resins and plastics. Here, a novel binary catalytic system was developed with metal–organic frameworks (MOFs) and deep eutectic solvents (DESs), which synergically exhibited a superior fructose dehydration efficiency with a HMF yield of 98.5% within 40 min. The replacement from terephthalic acid to 2,5-furandicarboxylic acid as the organic ligand in MOFs catalysts altered the coordination microenvironment of metal nodes, resulting in remarkably enhanced fructose conversion rates. The formation of hierarchical porous structures and moderated Brønsted acid sites in sulfonated MOFs further promoted the HMF production. Notably, HMF could be readily separated from the MOFs-DESs system and the MOF catalyst maintained stable performance after six recycles. Theoretical calculations clarified a positive correlation between the hydrogen bond interaction (between fructose and DESs components) energy and reaction efficiency. This study provided a new strategy to couple hierarchical solid acid catalysts with functional solvents binary towards effective and sustainable upgrading of biomass-derived molecules.
Keywords
5-Hydroxymethylfurfural, Deep eutectic solvents, Hydrogen bond, MOFs, Taverne, General Chemistry, Environmental Chemistry, General Chemical Engineering, Industrial and Manufacturing Engineering
Citation
Li, M, Huai, L, Zhang, Y, Ma, H, Zhang, P, Xu, F, Zhang, J & Jiang, L 2024, 'A binary catalytic system of sulfonated metal–organic frameworks and deep eutectic solvents towards highly efficient synthesis of 5-hydroxymethylfurfural from fructose', Chemical Engineering Journal, vol. 493, 152767. https://doi.org/10.1016/j.cej.2024.152767