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March 8, 2026Industrial & Engineering Chemistry Research3 citations

The Effect of Molecular Chain Entanglement Regulated by Different Shear Conditions on Stereocomplex Crystallization in the PLLA/PDLA Blend

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YLYanfang LiLTLingli TangJMJie Min

Key Points

  • The aim is to understand how molecular chain entanglement under varying shear conditions influences stereocomplex crystallization in PLLA/PDLA blends.
  • Utilized a rotary rheometer to apply different shear fields
  • Analyzed the rheological behavior of sheared PLLA/PDLA samples
  • Investigated crystallization performance under various shear modes
  • Shear modes effectively disentangle molecular chains, enhancing stereocomplex crystal formation.
  • Higher chain disentanglement and SC content observed in linear shear and high-strain LAOS than in constant and low-strain LAOS.
  • Decreasing shear temperature results in increased SC content within the same shear mode.

Abstract

In order to investigate the effect of molecular chain entanglement regulated by different shear conditions on stereocomplex crystallization in the PLLA/PDLA blend, a rotary rheometer was used to apply shear fields. Subsequently, the rheological behavior and crystallization performance of the sheared sample were discussed in detail. The results indicate that all of the shear modes can achieve the disentanglement of the sample molecular chains, thus promoting the formation of stereocomplex crystals (SCs) in the system. The degree of chain disentanglement and the corresponding SC content in linear shear and high-strain large amplitude oscillatory shear (LAOS) samples are both higher than those in constant shear and low-strain LAOS samples, respectively. In addition, as the shear temperature decreases, the content of SCs increases in the same shear mode. All of these results provide a more detailed theoretical basis in the future for improving the SC content in the PLLA/PDLA blend.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69ada804bc08abd80d5bb3a2https://doi.org/10.1021/acs.iecr.5c04206
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