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February 12, 2026ChemSusChem2 citations

Chemically Degradable Carbon Dioxide‐Incorporated Polyurethane From Biomass‐Derived Polyester Polyols as Sustainable Adhesives

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YJYongseok JeongJJJiwon JangSungkyunkwan UniversityYYYujin YangSungkyunkwan University

Key Points

  • To develop environmentally friendly polyurethane adhesives from biomass-derived materials and carbon dioxide.
  • Synthesize biobased polyurethane resins using FDCA and carbon dioxide.
  • Compare adhesion properties in T-peel tests between biobased and petroleum-derived adhesives.
  • Assess degradation processes using base-catalyzed transesterification.
  • Biobased PU adhesives showed a maximum adhesion strength of 986 gf/25 mm.
  • The adhesives displayed low glass transition temperatures, ensuring flexibility at room temperature.
  • The synthesized adhesives were capable of being degraded for substrate recovery.

Abstract

Polyurethane (PU) adhesives are extensively employed in flexible packaging owing to their strong adhesion and excellent wettability. However, most conventional PU adhesives are petroleum‐based, which has driven growing interest in biobased alternatives. In this article, we synthesized biobased PU adhesives for flexible packaging applications using 2,5‐furandicarboxylic acid (FDCA) and carbon dioxide (CO 2 ). FDCA‐based polyols (FPs) (2500–3500 g mol −1 ) with processable viscosities were prepared from FDCA, succinic acid, and 1,3‐propanediol. To further enhance adhesion by increasing hydrogen‐bond density, the diol and triol containing urethane moieties were synthesized via CO 2 ‐utilization technology. In T‐peel tests, the adhesives crosslinked with CO 2 ‐based triols exhibited the highest adhesion strength (986 gf/25 mm) and were compared with those crosslinked using petroleum‐derived trimethylolpropane (TMP). The prepared adhesives exhibited low glass transition temperature (from −28 to −18°C), ensuring flexibility at room temperature. In addition, the synthesized adhesives could be degraded through base‐catalyzed transesterification in ethanol/ethyl acetate, enabling clean substrate recovery. These sustainable FDCA/CO 2 ‐based PU adhesives demonstrate strong potential as alternatives to petroleum‐derived adhesives for flexible packaging.

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Cite This Study

Jeong et al. (2026) studied this question.

synapsesocial.com/papers/698d6edc5be6419ac0d54b82https://doi.org/10.1002/cssc.202502079
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