首页> 外文期刊>RSC Advances >Fully biobased thermoplastic elastomers: synthesis and characterization of poly(l-lactide)-b-polymyrcene-b-poly(l-lactide) triblock copolymers
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Fully biobased thermoplastic elastomers: synthesis and characterization of poly(l-lactide)-b-polymyrcene-b-poly(l-lactide) triblock copolymers

机译:完全生物化的热塑性弹性体:聚(L-丙交酯)-b-多碳-b-聚(L-丙交酯)三嵌段共聚物的合成和表征

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摘要

Fully biobased poly( L -lactide)- b -polymyrcene- b -poly( L -lactide) triblock copolymers with PLLA as the hard block and polymyrcene as the soft block were synthesized by the ring opening polymerization of L -lactide in the presence of the dihydroxyl-terminated polymyrcene precursor and organocatalyst. The copolymer composition and molecular weight of these triblock copolymers were confirmed by NMR and GPC results. Two separated glass transition temperatures were detected by both DMA and DSC techniques, indicating an existence of micro-phase separation in these triblock copolymers, which is a typical characteristic of thermoplastic elastomers with the content of soft block increases. Tensile testing revealed that PLLA- b -PM- b -PLLA (200) having 20 wt% polymyrcene show distinct yielding while other samples fracture at low strain without yielding. POM results indicated that all these spherulites show the same characteristic “Maltese cross” patterns. With the increasing content of polymyrcene, the perfection of spherulites decreases, especially for PLLA- b -PM- b -PLLA (200). Considering the current energy and environmental problems, it is expected that these fully biobased thermoplastic elastomers will be of great significance in expanding the applications of PLLA and solving the ecological crisis around us.
机译:通过L-LACTENTE在存在下,通过L-LACTENE的环开口聚合合成了完全生物化的聚(L-阶L-阶)与PLLA作为硬嵌段的三嵌段共聚物作为硬嵌段和多基因的三嵌段共聚物二羟基封端的多碳前体和有机催化剂。通过NMR和GPC结果证实了这些三嵌段共聚物的共聚物组合物和分子量。 DMA和DSC技术检测到两个分离的玻璃化转变温度,表明在这些三嵌段共聚物中存在微相分离,这是具有软块含量的热塑性弹性体的典型特征。拉伸检测显示,具有20wt%多基因的PLLA-B-BM-B-BPLLA(200)显示出不同的屈服,而其他样品在低菌株处裂缝而不产生。 POM结果表明所有这些球质都显示出相同的特征“马耳他交叉”模式。随着金属烯含量的增加,球晶的完美降低,特别是对于PLLA-B-BM-B-BPLLA(200)。考虑到目前的能量和环境问题,预计这些完全生物化的热塑性弹性体将对扩大PLLA的应用并解决我们周围生态危机的重要意义。

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