Impact of Porous Silica Nanosphere Architectures on the Catalytic Performance of Supported Sulphonic Acid Sites for Fructose Dehydration to 5-Hydroxymethylfurfural

Abstract

5-hydroxymethylfurfural represents a key chemical in the drive towards a sustainable circular economy within the chemical industry. The final step in 5-hydroxymethylfurfural production is the acid catalysed dehydration of fructose, for which supported organoacids are excellent potential catalyst candidates. Here we report a range of solid acid catalysis based on sulphonic acid grafted onto different porous silica nanosphere architectures, as confirmed by TEM, N2 porosimetry, XPS and ATR-IR. All four catalysts display enhanced active site normalised activity and productivity, relative to alternative silica supported equivalent systems in the literature, with in-pore diffusion of both substrate and product key to both performance and humin formation pathway. An increase in-pore diffusion coefficient of 5-hydroxymethylfurfural within wormlike and stellate structures results in optimal productivity. In contrast, poor diffusion within a raspberry-like morphology decreases rates of 5-hydroxymethylfurfural production and increases its consumption within humin formation.

Publication DOI: https://doi.org/10.1002/cplu.202300413
Divisions: College of Engineering & Physical Sciences > Aston Institute of Materials Research (AIMR)
College of Engineering & Physical Sciences > School of Infrastructure and Sustainable Engineering > Chemical Engineering & Applied Chemistry
College of Engineering & Physical Sciences > Aston Advanced Materials
Funding Information: CMAP would like to thank the Research Complex for access and support to these facilities and equipment. In addition, the UK Catalysis Hub is kindly thanked for resources and support provided via our membership of the UK Catalysis Hub Consortium and funded
Additional Information: © 2023 The Authors
Uncontrolled Keywords: 5-hydroxymethylfurfural,diffusion,fructose,nanospheres,sulphonic acid,Chemistry(all)
Last Modified: 26 Apr 2024 07:19
Date Deposited: 13 Oct 2023 14:55
Full Text Link:
Related URLs: https://chemist ... /cplu.202300413 (Publisher URL)
http://www.scop ... tnerID=8YFLogxK (Scopus URL)
PURE Output Type: Article
Published Date: 2023-12
Published Online Date: 2023-10-05
Accepted Date: 2023-10-04
Authors: Price, Cameron-Alexander H.
Torres-Lopez, Antonio
Evans, Robert (ORCID Profile 0000-0003-1471-201X)
Hondow, Nicole S.
Isaacs, Mark A.
Jamal, Aina Syahida
Parlett, Christopher

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License: Creative Commons Attribution

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