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Strain recovery and stress relaxation behaviour of multiblock copolymer blends physically cross-linked with PLA stereocomplexation
[摘要] Polylactide (PLA) stereocomplexes have attracted attention due to their ability to improve the thermal stability of bioplastics. Here, we evaluate whether PLA stereocomplexes can form stable physical cross-links in blends of a multiblock copolymer with poly(L-lactide) and poly(epsilon-caprolactone) segments (PLLA-PCL) and a poly(D-lactide) oligomer (PDLA). Through the investigation of the strain recovery in step-cycle experiments and compliance of stress relaxation behaviour with a three-component model for the deformation of semi-crystalline polymers, PLA stereocomplexes were found to possess sufficient stability in the true strain range epsilon(H) < 2.25 to be described as firm physical netpoints at 70 degrees C in the studied blends with PLA stereocomplex content phi(c) (sc) >= 1.1 wt%, when the PCL domains are melted. Limiting phi(c sc) <= 6 wt% broadens the behaviour inherent to elastic cross-linked networks to the strain values up until breakage of the samples, while the increase of phi(c sc) triggers plastic deformations typical for semi-crystalline polymers. Redistributing of internal stresses from the amorphous to crystalline domains at increase of phi(c) calculated with the adopted model was identified as reason of PLA stereocomplexes failure as stable physical network junctions at higher phi(c sc). Within the experimentally determined strain and composition ranges, in which PLA stereocomplexes possess structural stability, they can form robust cross-links in a polymer network. The knowledge gained here provides valuable design criteria for multifunctional thermoplastic elastomers.
[发布日期] 2020-11-17 [发布机构] 
[效力级别]  [学科分类] 
[关键词] Thermoplastic elastomers;Physical cross-links;Polylactide stereocomplexation [时效性] 
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