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Covalent organic framework-based hybrid architectonics for catalytic upgrading of agro-waste-derived platform molecules into biofuels and fine chemicals

delete2026-08-14
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OA
AI
L
Lalit Goswami
G
Gopa Nandikes
M
Mohd Shabbir
P
Pritam Kumar Dikshit
S
Siddhartha Narayan Borah
N
Nirmal Kumar Katiyar
H
Harvinder Singh Sohal
M
Mohammad Moosazadeh
G
Gaurav Pandey
S
Sushant Singh
A
Arti Choudhary *
S
Seungdae Oh *
DOI:10.1186/s13068-026-02795-xdelete
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Abstract

Abstract

En 中文
The catalytic transformation of biomass to high value sustainable platform chemicals presents an auspicious avenue for developing a renewable bio-economy. The conversion of C5 and C6 from xylose and glucose involves two-step processes of tandem hydrogenative hydrogenolysis reaction. Recently, covalent organic frameworks (COFs) and COF-based hybrid architectonic have gathered considerable research interest for the direct synthesis of fine chemicals from biomass via dihydroxylation owing to their functionalized active sites and well-ordered porous structures. The present review includes the fundamentals of catalytic hydrogenolysis of 5-hydroxymethylfurfural (5‑HMF) to 2,5-dimethylfuran (2,5-DMF) and furfural production. It includes the synthesis, characterization and properties of COFs-based architectonics for catalytic hydrogenolysis. Numerous studies are compared on the basis of their conversion efficiency, catalytic performance, recyclability, and reusability for the potential conversion of 5‑HMF to 2,5-DMF. The mechanistic insights, relationship between the structural features, and reaction pathways are elaborated in detail. Finally, the limitations and future perspectives are covered that will be helpful for “plug-and-play” during the cascade processes including the upgradation of downstream process in combination with continuous-flow reactors, linking with in-situ spectroscopy with DFT and machine learning, etc. for sustainable platform chemical production.
Keywords:
Hydrogenolysis
5‑Hydroxymethylfurfural
Furfural
Fine chemicals
Reusability

Journal

B
Biotechnology for Biofuels
IF:
6.1
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2.5K
Citations:
1.3W

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School of Advanced Engineering
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