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February 21, 2026Macromolecules0 citations

Deciphering Internal Stress Dynamics: Generation and Relaxation Mechanisms in Photocuring

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LLLun LiWWWei WuQCQuan Chen

Key Points

  • The aim is to understand how internal stresses develop during photocuring and how to manage them for better material properties.
  • Utilized rheological techniques to monitor stress and volumetric changes in acrylates during photocuring.
  • Constructed time–intensity–transformation and time–temperature–transformation diagrams to analyze curing parameters.
  • Varied light intensity and curing temperature to observe effects on gelation rates and mechanical properties.
  • Found that stress accumulation compromises interfacial strength and stability of cured acrylates.
  • Demonstrated that mechanical performance varied even with matched gelation rates due to polymerization heterogeneity.
  • Gained insights into optimizing curing conditions for enhanced material properties.

Abstract

Cross-linking during photocuring restricts chain and segmental mobility, causing internal stress accumulation that compromises interfacial strength and dimensional stability. In this study, rheological methods are employed to track the evolution of stress and volumetric change in acrylates throughout the entire curing process─from the liquid-to-solid transition (gelation), through vitrification, to reaction saturation. Time–intensity–transformation (TIT) and time–temperature–transformation (TTT) diagrams are constructed by correlating curing parameters (light intensity (1.34–5.70 mW/cm2) and curing temperature (30–55 °C)) with stress profiles. By simultaneously increasing reaction temperature and decreasing light intensity, we obtain sets of samples with matched gelation rates. Nevertheless, their mechanical performance varies systematically due to polymerization heterogeneity governed by the relative rates of chain diffusion and chemical reaction. The findings not only deepen the mechanistic understanding of photopolymerization but also provide a strategy for tailoring mechanical performance through optimized curing protocols.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69994aab873532290d01f1e2https://doi.org/10.1021/acs.macromol.5c02315
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