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April 20, 2026Polymer Degradation and Stability3 citationsOpen Access

The role of thermo-oxidative degradation on the dynamic behavior of disulfide-based epoxy vitrimers

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NLNiklas LorenzAKAndreas KlinglerWDWilliam E. Dyer

Key Points

  • The research aims to understand how thermo-oxidative degradation affects the dynamic behavior of disulfide-based epoxy vitrimers.
  • Investigation of mass loss related to S-S bond cleavage and volatile release.
  • Comparison with non-disulfide reference to identify degradation mechanisms.
  • Kinetic modeling of degradation processes based on thermogravimetric data.
  • Identification of degradation products using FTIR.
  • Assessment of dynamic properties through stress-relaxation and DMTA.
  • Disulfide bond degradation was found to be the major early-stage degradation mechanism.
  • A carbonyl surface layer was formed, affecting dynamic mechanical properties.
  • Degradation led to decreased crosslink density and reduced activation energies for bond-exchange.
  • Macroscopic flow can initiate at lower temperatures with reduced processing conditions.
  • Long-term degradation adversely affected dynamic properties due to S-S bond cleavage.

Abstract

• Study of thermo-oxidative degradation in bulk disulfide epoxy vitrimers. • Initial mass loss is associated with S-S bond cleavage and volatile release. • Carbonyl surface layer affects macroscopic dynamic mechanical response. • Degradation lowers crosslinking density and bond-exchange activation energies. • As S-S cleavage and oxidation progress, macroscopic flow starts at lower temperatures. Vitrimers are a class of polymer networks that hold promise as recyclable thermosets with self-healing capabilities, enabled by dynamic molecular-level rearrangements. However, achieving the desired network rearrangements usually demands thermal treatments at elevated temperatures substantially above the glass transition temperature T g while maintaining these harsh conditions for prolonged dwell times. Therefore, the present paper examines the effects of thermo-oxidative degradation on the dynamicity of a disulfide-based epoxy vitrimer. First, comparison with a non-disulfide-containing reference indicates that disulfide bond degradation is the predominant early-stage degradation mechanism. The thermo-oxidative degradation process was described using model-free kinetics fitted to thermogravimetric data, which was subsequently used to selectively control the degradation state of the vitrimer samples as a function of temperature and exposure time. FTIR identified the presence of a highly oxidized carbonyl surface layer, while DMTA confirmed a drop in the primary T g . Stress-relaxation testing indicates a temporary, favorable effect of decreased crosslink density: increased bond exchange rates, which in turn facilitate shorter dwell times for healing and shape reconfiguration. This manifests as shifts in the initiation of macroscopic flow, reducing the (re)processing temperature regime. In the long run, cleavage of the dynamic S-S crosslinks becomes predominant, adversely compromising the dynamic properties of these systems, as evidenced by incomplete relaxation and reduced macroscopic flow capabilities. These insights into the distinct effects of thermo-oxidative aging provide a critical foundation for evaluating the long-term viability after high-temperature exposure in an oxygen environment and have important implications for designing appropriate (re)processing regimes for disulfide-based epoxy vitrimers.

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Cite This Study

Lorenz et al. (2026) studied this question.

synapsesocial.com/papers/69e5c22d03c29399140288bfhttps://doi.org/10.1016/j.polymdegradstab.2026.112140
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