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Copolymer Networks Based on Poly(ω-pentadecalactone) and Poly(ε-caprolactone) Segments as a Versatile Triple-Shape Polymer System

机译:基于聚(ω-十五烯内酯)和聚(ε-己内酯)链段的共聚物网络,是一种多功能的三形状聚合物系统

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摘要

Thermo-sensitive triple-shape polymers can perform two consecutive shape changes in response to heat. These shape changes correspond to the recovery of two different deformations in reverse order, which were programmed previously at elevated temperature levels (T_(mid)and T_(high)) by the application of external stress. Recently, an AB copolymer network was described, which surprisingly exhibited a triple-shape effect despite being programmed with only one deformation at T_(higfr)Here it is explored whether a copolymer network system can be designed that enables a one-step deformation process at ambient temperature (cold drawing) as a novel, gentle, and easy-to-handle triple-shape-creation procedure, in addition to the procedures reported to date, which generally involve deformation(s) at elevated temperature(s). A copolymer-network system with two crystallizable polyester segments is synthesized and characterized, fulfilling two crucial criteria. These materials can be deformed at ambient temperature by cold drawing and show, even at T_(high), which is above the melting points of both switching domains, elongation at break of up to 250%. Copolymer networks with PCL contents of 75 and 50 wt% show a triple-shape effect after cold drawing with shape-fixity ratios between 65% and 80% and a total-shape-recovery ratio above 97%. Furthermore, in these copolymer networks, the triple-shape effect can be obtained after a one-step deformation at T_(high). Independent of the temperature at which the deformation is applied (ambient temperature or T_(high)), copolymer networks that have the same compositions show similar switching temperatures and proportioning of the recovery in two steps. The two-step programming procedure enables a triple-shape effect in copolymer networks for an even broader range of compositions. This versatile triple-shape-material system based on tailored building blocks is an interesting candidate material for applications in fixation systems or disassembling systems.
机译:热敏三重形状聚合物可以响应于热而执行两个连续的形状变化。这些形状变化对应于两个不同变形的反向恢复,这些变形先前已通过施加外部应力在升高的温度水平(T_(中)和T_(高))下进行了编程。最近,描述了一种AB共聚物网络,尽管仅在T_(higfr)处进行了一次变形编程,但该共聚物网络却出人意料地展现出三重形状的效果。在此探讨了是否可以设计一种能够在以下位置进行一步变形过程的共聚物网络系统:除了迄今为止报道的程序(通常涉及高温变形)以外,环境温度(冷绘图)是一种新颖,温和且易于处理的三重形状创建程序。合成并表征了具有两个可结晶聚酯链段的共聚物网络系统,满足两个关键标准。这些材料可以在环境温度下通过冷拔变形,甚至在高于两个开关域熔点的T_(high)时也显示出高达250%的断裂伸长率。 PCL含量为75和50 wt%的共聚物网络在冷拔后显示出三重形状效果,形状固定率在65%至80%之间,总形状恢复率超过97%。此外,在这些共聚物网络中,可以在T_(高)处一步变形后获得三重效果。与施加变形的温度(环境温度或T_(高))无关,具有相同组成的共聚物网络在两个步骤中显示出相似的转换温度和回收比例。两步编程程序可以在共聚物网络中实现三重形状效果,从而实现更大范围的组合物。这种基于定制构建块的通用三重形状材料系统是用于固定系统或拆卸系统的有趣候选材料。

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  • 来源
    《Advanced Materials for Optics and Electronics》 |2010年第20期|p.3583-3594|共12页
  • 作者单位

    Center for Biomaterial Development and Berlin Brandenburg Center for Regenerative Therapies (BCRT) Institute of Polymer Research GKSS Research Center Ceesthacht GmbH Kantstr. 55, 14513 Teltow, Germany;

    rnCenter for Biomaterial Development and Berlin Brandenburg Center for Regenerative Therapies (BCRT) Institute of Polymer Research GKSS Research Center Ceesthacht GmbH Kantstr. 55, 14513 Teltow, Germany,Tianjin University-GKSS Research Center Joint Laboratory for Biomaterials and Regenerative Medicine Weijin Road 92, 300072 Tianjin (China) and Kantstr. 5514513 Teltow, Germany;

    rnCenter for Biomaterial Development and Berlin Brandenburg Center for Regenerative Therapies (BCRT) Institute of Polymer Research GKSS Research Center Ceesthacht GmbH Kantstr. 55, 14513 Teltow, Germany,Tianjin University-GKSS Research Center Joint Laboratory for Biomaterials and Regenerative Medicine Weijin Road 92, 300072 Tianjin (China) and Kantstr. 5514513 Teltow, Germany;

    rnCenter for Biomaterial Development and Berlin Brandenburg Center for Regenerative Therapies (BCRT) Institute of Polymer Research GKSS Research Center Ceesthacht GmbH Kantstr. 55, 14513 Teltow, Germany,Tianjin University-GKSS Research Center Joint Laboratory for Biomaterials and Regenerative Medicine Weijin Road 92, 300072 Tianjin (China) and Kantstr. 5514513 Teltow, Germany;

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