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Tunable Shape Memory Performances via Multilayer Assembly of Thermoplastic Polyurethane and Polycaprolactone

机译:通过热塑性聚氨酯和聚己内酯的多层组装可调节形状记忆性能

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摘要

Shape memory materials containing alternating layers of thermoplastic polyurethane (TPU) and polycaprolactone (PCL) were fabricated through layer-multiplying extrusion. As a type of special co-continuous morphology, the multilayer structure had stable and well-defined continuous layer spaces and could be controlled by changing the number of layers. Compared with conventional polymer blends, the multilayer-assembled system with the same compositions had higher shape-fixing and -recovery ratios that could be further improved by increasing the number of layers. By analyzing from a viscoelastic model, the deformation energy preserved in elastic TPU layers would be balanced by adjacent PCL layers through interfacial shearing effect so that each component in the multilayer structure was capable of endowing the maximum contribution to both of the shape-fixing and -recovery stages. Besides, the influence of the hardness of TPU layers and the morphology of PCL layers were respectively concerned as well. Results revealed that choosing low-hardness TPU or replacing neat PCL layers by TPU/PCL blend with co-continuous morphology were beneficial to achieving outstanding shape memory performances.
机译:通过多层挤出制造包含热塑性聚氨酯(TPU)和聚己内酯(PCL)交替层的形状记忆材料。作为一种特殊的共连续形态,多层结构具有稳定且定义明确的连续层空间,可以通过更改层数来控制。与常规的聚合物共混物相比,具有相同组成的多层组装系统具有更高的形状固定率和回复率,可以通过增加层数来进一步改善。通过粘弹性模型分析,保留在弹性TPU层中的变形能将通过界面剪切作用被相邻的PCL层平衡,从而使多层结构中的每个组件都能够最大程度地贡献于形状固定和-恢复阶段。此外,还分别关注了TPU层硬度和PCL层形态的影响。结果表明,选择低硬度TPU或用具有连续连续形态的TPU / PCL共混物替换纯PCL层有利于获得出色的形状记忆性能。

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