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Recent advances in cellulose depolymerization: Mechanistic insights, catalytic innovations, and scalable pathways for biomass valorization

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dc.title Recent advances in cellulose depolymerization: Mechanistic insights, catalytic innovations, and scalable pathways for biomass valorization en
dc.contributor.author Lehocký, Marián
dc.relation.ispartof Polymers
dc.identifier.issn 2073-4360 Scopus Sources, Sherpa/RoMEO, JCR
dc.date.issued 2026
utb.relation.volume 18
utb.relation.issue 13
dc.type preprint
dc.publisher Multidisciplinary Digital Publishing Institute (MDPI)
dc.identifier.doi 10.3390/polym18131565
dc.relation.uri https://www.mdpi.com/2073-4360/18/13/1565
dc.relation.uri https://www.mdpi.com/2073-4360/18/13/1565/pdf?version=1782222275
dc.subject cellulose depolymerization en
dc.subject biomass valorization en
dc.subject lignocellulosic biorefinery en
dc.subject circular bioeconomy en
dc.subject glucose production en
dc.subject cellulose valorization en
dc.subject cellulose decomposition en
dc.description.abstract Cellulose is the most abundant renewable polymer on Earth and a key feedstock for future low-carbon biorefineries. However, its industrial utilization is fundamentally limited by strong structural recalcitrance arising from crystalline domain organization, hierarchical fibrillar architecture, and extensive hydrogen-bonding networks that restrict catalytic accessibility and glycosidic bond cleavage. As a result, efficient cellulose depolymerization remains a central challenge in biomass conversion. This review critically evaluates recent advances in cellulose depolymerization across chemical, enzymatic, thermochemical, mechanochemical, oxidative, and hybrid catalytic systems. Emphasis is placed on mechanistic principles governing bond activation, including hydrolytic, radical-mediated, and energy-assisted pathways, and on how catalyst design, solvent systems, and substrate morphology influence conversion efficiency and selectivity. We further compare key performance metrics relevant to industrial deployment, including product yield, carbon efficiency, energy demand, catalyst stability, solvent recyclability, and lifecycle environmental impact. Mineral-acid processes enable rapid conversion but suffer from corrosion, degradation by-products, and waste handling issues, whereas enzymatic systems offer high selectivity but are limited by slow kinetics and feedstock sensitivity. Finally, we highlight downstream valorization routes and conclude that no single technology satisfies all industrial requirements. Future progress will depend on integrated, circular process designs combining advanced catalysis, process intensification, and digital optimization strategies. en
utb.faculty University Institute
dc.identifier.uri http://hdl.handle.net/10563/1012854
dc.date.accessioned 2026-05-01T11:50:59Z
dc.date.available 2026-05-01T11:50:59Z
utb.ou Centre of Polymer Systems
utb.contributor.internalauthor Lehocký, Marián
utb.fulltext.affiliation Marián Lehocký 1,* 1 Centre of Polymer Systems, Tomas Bata University in Zlín, Trida Tomase Bati 5678, 760 01 Zlín, Czech Republic * Correspondence: lehocky@utb.cz
utb.fulltext.affiliation Marián Lehocký 1,* 1 Centre of Polymer Systems, Tomas Bata University in Zlín, Trida Tomase Bati 5678, 760 01 Zlín, Czech Republic * Correspondence: lehocky@utb.cz
utb.fulltext.dates 4 May 2026 Revised: 30 May 2026 Accepted: 22 June 2026 Published: 23 June 2026
utb.fulltext.dates 4 May 2026 Revised: 30 May 2026 Accepted: 22 June 2026 Published: 23 June 2026
utb.fulltext.sponsorship This research was funded by the Ministry of Education, Youth and Sports of the Czech Republic, grant number RP/CPS/2024-28/005 and OP JAC (POCEK), number CZ.02.01.01/00/23_021/0009004.
utb.fulltext.projects RP/CPS/2024-28/005
utb.fulltext.projects CZ.02.01.01/00/23_021/0009004
utb.fulltext.faculty University Institute
utb.fulltext.ou Centre of Polymer Systems
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