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February 28, 2026Macromolecules2 citations

Role of Stress Relaxation in Biaxially Stretching-Induced Crystallization of Hard Segments in Thermoplastic Elastomers

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RSRongsheng SunYGYaqian GuoWHWenbing Hu

Key Points

  • This research investigates the role of stress relaxation in the crystallization of hard segments in thermoplastic elastomers during biaxial stretching.
  • Conducted dynamic Monte Carlo simulations of biaxial stretching-induced crystallization.
  • Compared crystallization with and without stress relaxation in diblock copolymers.
  • Analyzed both concentrate and dilute cases of hard-segment microdomains.
  • Stress relaxation accelerates intramolecular crystal nucleation.
  • Stress relaxation significantly suppresses crystallinity, leading to smaller crystallites.
  • Dilute microdomains contribute less to physical cross-links and lower the Young's modulus and toughness.

Abstract

Thermoplastic elastomers of multiblock copolymers comprising alternatingly semicrystalline (hard) and molten (soft) blocks, such as olefin block copolymers, polyurethanes, polyester–polyethers, and polyamide–polyethers, are often processed via biaxial stretching for the products of thin films and foams. In the biaxially stretching-induced crystallization of hard segments, stress relaxation commonly plays an important role, but its mechanism has not yet been clearly studied. By comparing the parallel crystallization cases with and without stress relaxation, we performed dynamic Monte Carlo simulations of the biaxially stretching-induced crystallization of hard segments in the concentrate and dilute cases of bulk diblock copolymers to investigate the role of stress relaxation. The results demonstrated that stress relaxation accelerates intramolecular crystal nucleation but significantly suppresses crystallinity, resulting in more and smaller crystallites in both concentrate and dilute hard-segment microdomains. The dilute hard-segment microdomains with suppressed crystallinity will contribute less to the physical cross-links of thermoplastic elastomers and consume less impact energy via melting–recrystallization, thus lower their Young’s modulus and toughness. Furthermore, their smaller crystallites will weaken the yielding strength of physical cross-links. In conclusion, stress relaxation plays a negative role in the production of strong yet tough films and foams of thermoplastic elastomers. The high-speed biaxial stretching or foaming could reduce the extent of stress relaxation and thus guarantee the industrial solidification processes for the highly efficient and high-quality production.

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Cite This Study

Sun et al. (2026) studied this question.

synapsesocial.com/papers/69a286c90a974eb0d3c020d6https://doi.org/10.1021/acs.macromol.5c03602
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