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具有控制微观结构的双结晶多嵌段共聚物,具有高形状记忆固定性和恢复性。

Double Crystalline Multiblock Copolymers with Controlling Microstructure for High Shape Memory Fixity and Recovery.

机构信息

Beijing National Laboratory for Molecular Science, CAS Key Laboratory of Engineering Plastics, CAS Research/Education Center for Excellence in Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences , Beijing 100190, P.R. China.

Beijing Key Laboratory of Organic Materials Testing Technology & Quality Evaluation, Beijing Engineering Research Center of Food Safety Analysis, Beijing Center for Physical & Chemical Analysis , Beijing 100089, P.R. China.

出版信息

ACS Appl Mater Interfaces. 2017 Sep 6;9(35):30046-30055. doi: 10.1021/acsami.7b08403. Epub 2017 Aug 25.

Abstract

The shape memory performance of double crystalline poly(butylene succinate)-co-poly(ε-caprolactone) (PBS-co-PCL) multiblock copolymers with controlling microstructure was studied, and the corresponding microstructure origin was further quantitatively analyzed by wide and small-angle X-ray scattering (WAXS and SAXS) experiments. It was found that the multiblock copolymer with higher PCL content, proper deformation strain, and inhibited crystallization of PBS (lower crystallinity and smaller crystal size, which could be realized by quenching from the melt) would exhibit better shape memory fixity and recovery performance. WAXS and SAXS results revealed that the shape fixity ratio (R) was closely related with the relative crystallinity of the PCL component, while the shape recovery ratio (R) strongly relied on the deformation and recovery behavior of the PBS and PCL components that changed along with compositions and deformation strains. For the copolymer with higher PCL content (BSCL), at the lower deformation strain (0% ∼ 90%), both the PBS and PCL components after recovery had no orientation (labeled as stage I), resulting in almost complete recovery; with the deformation strain increasing (90% ∼ 200%), it was the irreversible deformation of the PCL component that largely took responsibility for the decreased R (stage II). On the contrary, when the PCL content decreased to 50 wt % (BSCL), stage I (0% ∼ 50%) and stage II (50% ∼ 100%) appeared in much lower strains; with the deformation strain increasing (100% ∼ 200%), the irreversible deformation of both PBS and PCL components was mainly responsible for the further reduction of R (stage III). It could exhibit excellent shape memory performance for biodegradable double crystalline multiblock copolymers by controlling the composition, deformation strain, and crystallization, which might have wide application prospects in biomedical areas.

摘要

研究了具有控制微观结构的双晶聚丁二酸丁二醇酯-共-聚己内酯(PBS-co-PCL)多嵌段共聚物的形状记忆性能,并通过广角和小角 X 射线散射(WAXS 和 SAXS)实验进一步定量分析了相应的微观结构起源。结果发现,具有较高 PCL 含量、适当变形应变和抑制 PBS 结晶(较低结晶度和较小晶体尺寸,可通过熔体淬火实现)的多嵌段共聚物将表现出更好的形状记忆固定性和恢复性能。WAXS 和 SAXS 结果表明,形状固定比(R)与 PCL 组分的相对结晶度密切相关,而形状恢复比(R)强烈依赖于 PBS 和 PCL 组分的变形和恢复行为,这些行为随组成和变形应变而变化。对于 PCL 含量较高的共聚物(BSCL),在较低的变形应变(0%90%)下,恢复后的 PBS 和 PCL 组分均无取向(标记为阶段 I),导致几乎完全恢复;随着变形应变的增加(90%200%),PCL 组分的不可逆变形对 R 的降低负有主要责任(阶段 II)。相反,当 PCL 含量降低到 50wt%(BSCL)时,在较低的应变下出现了阶段 I(0%50%)和阶段 II(50%100%);随着变形应变的增加(100%~200%),PBS 和 PCL 组分的不可逆变形主要负责 R 的进一步降低(阶段 III)。通过控制组成、变形应变和结晶,可以为可生物降解的双晶多嵌段共聚物展现出优异的形状记忆性能,在生物医学领域具有广阔的应用前景。

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