DOI: 10.1021/acssuschemeng.6c06329 ISSN: 2168-0485

Bioderived Multibranched Covalent Adaptable Networks: A Simple Approach to Recyclable and Degradable Elastomers

Ratthapit Wuttisarn, Lars Schwarzer, Emilia Fulajtar, Sorapat Niyomsin, Autchara Pangon, Apirat Laobuthee, Seema Agarwal, Suwabun Chirachanchai

Abstract

Developing elastomers that simultaneously integrate excellent elastomeric performance, reprocessability, controlled end-of-life degradation, and bioderived sustainability remains a significant challenge. Herein, a bioderived vitrimeric elastomer is designed using star-shaped poly(ε-decalactone) (PDL) and a crosslinker via dynamic vinylogous urethane chemistry. Three-armed and four-armed PDL precursors with well-defined arm lengths enable precise control over network architecture and crosslink density via acetoacetate end-group functionalization and catalyst-free associative transamination exchange. The resulting elastomers exhibit low glass transition temperatures (–49 to –39 °C), broad rubbery plateaus, and exceptional extensibility, achieving elongation at break up to 2100%. Variation in arm number and chain length modulates stiffness, toughness, and bond-exchange kinetics, establishing clear structure-property relationships. Stress-relaxation experiments reveal Arrhenius-type dynamics and topology-freezing temperatures (Tv) near ambient conditions, confirming the vitrimeric nature of the network and its thermal reprocessability. After multiple reprocessing cycles, the materials retain ∼75% of their initial mechanical properties. Under industrial composting conditions, the bioderived networks exhibit pronounced molecular weight reduction (80–90%) and surface erosion, with degradability governed by crosslink density. The results demonstrate a molecularly engineered, environmentally friendly elastomer that integrates building blocks for extensibility, covalent adaptive networks for reprocessability, and bioderived polymers for environmental degradability within a single material platform.

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