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March 29, 2026Journal of Polymers and the Environment2 citationsOpen Access

Molecularly Structured Castor Oil-Derived Epoxy Vitrimers Crosslinked with Acidic Disulfide-Bearing Curing Agents: Efficient Dynamic Response, Degradability, And Recyclability

EAEmre AkdoğanMSMark D. Soucek

Key Points

  • To develop and analyze epoxy vitrimers derived from castor oil that are dynamic and recyclable.
  • Designed and synthesized polyglycidyl ether resin from castor oil through various chemical processes.
  • Crosslinked resin with acidic dithiobenzoic and dithiopropionic acids to create vitrimer networks.
  • Conducted structural, thermal, mechanical, and rheological analyses to assess properties.
  • DBA-cured vitrimers showed high tensile strength but were brittle.
  • DPA-cured vitrimers had better ductility and stress relaxation but lower strength.
  • Both vitrimers demonstrated high mechanical recyclability through hot-pressing and partial degradability.

Abstract

Abstract Conventional thermosets combine strength with irreversibility, but their lack of recyclability drives the urgent search for dynamic, bio-based alternatives. Here, a molecularly engineered polyglycidyl ether resin was deliberately designed and synthesized from castor oil via epoxidation, ring-opening transamidation, and glycidylation, yielding a highly functional and reactive epoxy precursor. This resin was subsequently crosslinked with aromatic 2,2′-dithiobenzoic acid (DBA) and aliphatic 3,3′-dithiopropionic acid (DPA) to generate dynamic epoxy vitrimer networks. Comprehensive structural, thermal, mechanical, and rheological analyses demonstrated that the curing agent chemistry decisively governed vitrimer properties. The DBA-cured vitrimer exhibited high tensile strength and superior gel content, albeit with brittle behavior. In contrast, the DPA-cured vitrimer displayed remarkable ductility and rapid stress relaxation due to its flexible aliphatic crosslinks, though at the expense of lower strength. Both vitrimers showed high mechanical recyclability via hot-pressing, partial chemical degradability under reductive conditions, and effective reprocessability with retention of mechanical integrity after multiple cycles. These findings establish castor oil-derived epoxy vitrimers as promising candidates for reprocessable, degradable, and high-performance thermosets, with tunable properties tailored by molecular design and curing agent structure. Graphical Abstract

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Cite This Study

Akdoğan et al. (2026) studied this question.

synapsesocial.com/papers/69c8c25dde0f0f753b39ca81https://doi.org/10.1007/s10924-026-03815-5
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