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Stereoregular functionalized polysaccharides via cationic ring-opening polymerization of biomass-derived levoglucosan

We report the facile synthesis and characterization of 1,6-α linked functional stereoregular polysaccharides from biomass-derived levoglucosan via cationic ring-opening polymerization (cROP). Levoglucosan is a bicyclic acetal with rich hydroxyl functionality, which can be synthetically modified to i...

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Autores principales: Porwal, Mayuri K., Reddi, Yernaidu, Saxon, Derek J., Cramer, Christopher J., Ellison, Christopher J., Reineke, Theresa M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9019921/
https://www.ncbi.nlm.nih.gov/pubmed/35656133
http://dx.doi.org/10.1039/d2sc00146b
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author Porwal, Mayuri K.
Reddi, Yernaidu
Saxon, Derek J.
Cramer, Christopher J.
Ellison, Christopher J.
Reineke, Theresa M.
author_facet Porwal, Mayuri K.
Reddi, Yernaidu
Saxon, Derek J.
Cramer, Christopher J.
Ellison, Christopher J.
Reineke, Theresa M.
author_sort Porwal, Mayuri K.
collection PubMed
description We report the facile synthesis and characterization of 1,6-α linked functional stereoregular polysaccharides from biomass-derived levoglucosan via cationic ring-opening polymerization (cROP). Levoglucosan is a bicyclic acetal with rich hydroxyl functionality, which can be synthetically modified to install a variety of pendant groups for tailored properties. We have employed biocompatible and recyclable metal triflate catalysts – scandium and bismuth triflate – for green cROP of levoglucosan derivatives, even at very low catalyst loadings of 0.5 mol%. Combined experimental and computational studies provided key kinetic, thermodynamic, and mechanistic insights into the cROP of these derivatives with metal triflates. Computational studies reveal that ring-opening of levoglucosan derivatives is preferred at the 1,6 anhydro linkage and cROP proceeds in a regio- and stereo-specific manner to form 1,6-α glycosidic linkages. DFT calculations also show that biocompatible metal triflates efficiently coordinate with levoglucosan derivatives as compared to the highly toxic PF(5) used previously. Post-polymerization modification of levoglucosan-based polysaccharides is readily performed via UV-initiated thiol–ene click reactions. The reported levoglucosan based polymers exhibit good thermal stability (T(d) > 250 °C) and a wide glass transition temperature (T(g)) window (<−150 °C to 32 °C) that is accessible with thioglycerol and lauryl mercaptan pendant groups. This work demonstrates the utility of levoglucosan as a renewably-derived scaffold, enabling facile access to tailored polysaccharides that could be important in many applications ranging from sustainable materials to biologically active polymers.
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spelling pubmed-90199212022-06-01 Stereoregular functionalized polysaccharides via cationic ring-opening polymerization of biomass-derived levoglucosan Porwal, Mayuri K. Reddi, Yernaidu Saxon, Derek J. Cramer, Christopher J. Ellison, Christopher J. Reineke, Theresa M. Chem Sci Chemistry We report the facile synthesis and characterization of 1,6-α linked functional stereoregular polysaccharides from biomass-derived levoglucosan via cationic ring-opening polymerization (cROP). Levoglucosan is a bicyclic acetal with rich hydroxyl functionality, which can be synthetically modified to install a variety of pendant groups for tailored properties. We have employed biocompatible and recyclable metal triflate catalysts – scandium and bismuth triflate – for green cROP of levoglucosan derivatives, even at very low catalyst loadings of 0.5 mol%. Combined experimental and computational studies provided key kinetic, thermodynamic, and mechanistic insights into the cROP of these derivatives with metal triflates. Computational studies reveal that ring-opening of levoglucosan derivatives is preferred at the 1,6 anhydro linkage and cROP proceeds in a regio- and stereo-specific manner to form 1,6-α glycosidic linkages. DFT calculations also show that biocompatible metal triflates efficiently coordinate with levoglucosan derivatives as compared to the highly toxic PF(5) used previously. Post-polymerization modification of levoglucosan-based polysaccharides is readily performed via UV-initiated thiol–ene click reactions. The reported levoglucosan based polymers exhibit good thermal stability (T(d) > 250 °C) and a wide glass transition temperature (T(g)) window (<−150 °C to 32 °C) that is accessible with thioglycerol and lauryl mercaptan pendant groups. This work demonstrates the utility of levoglucosan as a renewably-derived scaffold, enabling facile access to tailored polysaccharides that could be important in many applications ranging from sustainable materials to biologically active polymers. The Royal Society of Chemistry 2022-03-17 /pmc/articles/PMC9019921/ /pubmed/35656133 http://dx.doi.org/10.1039/d2sc00146b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Porwal, Mayuri K.
Reddi, Yernaidu
Saxon, Derek J.
Cramer, Christopher J.
Ellison, Christopher J.
Reineke, Theresa M.
Stereoregular functionalized polysaccharides via cationic ring-opening polymerization of biomass-derived levoglucosan
title Stereoregular functionalized polysaccharides via cationic ring-opening polymerization of biomass-derived levoglucosan
title_full Stereoregular functionalized polysaccharides via cationic ring-opening polymerization of biomass-derived levoglucosan
title_fullStr Stereoregular functionalized polysaccharides via cationic ring-opening polymerization of biomass-derived levoglucosan
title_full_unstemmed Stereoregular functionalized polysaccharides via cationic ring-opening polymerization of biomass-derived levoglucosan
title_short Stereoregular functionalized polysaccharides via cationic ring-opening polymerization of biomass-derived levoglucosan
title_sort stereoregular functionalized polysaccharides via cationic ring-opening polymerization of biomass-derived levoglucosan
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9019921/
https://www.ncbi.nlm.nih.gov/pubmed/35656133
http://dx.doi.org/10.1039/d2sc00146b
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