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March 24, 2026Macromolecular Rapid Communications0 citations

Non‐Toxic, Green Polyhydroxyurethanes Synthesized From Abundant Glucose Sources

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MCMithun ChakrabortyADArunava DuttaSRSomdatta Rudra

Key Points

  • The research aims to synthesize non-toxic polyhydroxyurethanes from abundant glucose sources for potential applications.
  • Synthesized a mono-cyclic carbonate from D-glucose.
  • Conducted thiol-ene reactions to create bis-cyclic carbonates.
  • Performed carbonate-amine polymerization with various diamines at mild temperatures without a catalyst.
  • Utilized various analytical methods (NMR, FTIR, GPC, TGA, DSC) to characterize the polymers.
  • Produced six non-isocyanate polyhydroxyurethanes with yields between 65%–80%.
  • Polymers exhibited molecular weights ranging from ∼7500 to 16000.
  • Glass transition temperatures varied from −7°C to −21°C.
  • Degradation temperatures ranged from 195°C to 245°C.
  • Demonstrated enzymatic degradation and biocompatibility, indicating suitability for biomedical applications.

Abstract

ABSTRACT A new 6‐membered mono‐cyclic carbonate was synthesized from abundant D‐glucose, which was then used in a thiol‐ene reaction to make two 6‐membered bis‐cyclic carbonates. These bis‐cyclic carbonates were then used as non‐toxic monomers to develop six non‐isocyanate polyhydroxyurethanes ( NIPU1‐NIPU6 ) through carbonate‐amine polymerization with various diamines, including amino acid‐based diamines, without a catalyst, at a mild temperature. The new 6‐membered mono‐cyclic carbonate and both the bis‐cyclic carbonates, that were produced in good to excellent yield in the range of 65%–80%, were identified by 1 H NMR, 13 C NMR, FTIR, and HRMS methods. Different analytical tools such as NMR ( 1 H, 13 C), FTIR, GPC, TGA, and DSC analyses were used to fully characterize all the NIPUs. These polymers have molecular weights ranging from ∼7500 to 16 000, glass transition temperatures between −7°C to −21°C, and degradation temperatures (T d,10% ) between 195°C and 245°C. Last but not the least, the enzymatic degradation behaviour and biocompatibility analysis of these NIPUs demonstrated that they were both enzymatically degradable and biocompatible. The presence of reactive hydroxyl functionalities throughout the polymer backbone that contains the sugar moiety can be helpful for further functionalization, in the biomedical area, and/or for curing reasons, and are anticipated to work well in applications like coating and adhesives.

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Cite This Study

Chakraborty et al. (2026) studied this question.

synapsesocial.com/papers/69c2296aaeb5a845df0d3c39https://doi.org/10.1002/marc.202500964
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