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A mechanical characterization of polymer scaffolds and films at the macroscale and nanoscale

机译:高分子支架和薄膜的宏观和纳米力学表征

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摘要

Biomaterials should be mechanically tested at both the nanoscale and macroscale under conditions simulating their working state, either in vitro or in vivo, to confirm their applicability in tissue engineering applications. In this article, polyester-urethane-based films and porous scaffolds produced by hot pressing and thermally induced phase separation respectively, were mechanically characterized at both the macroscale and nanoscale by tensile tests and indentation-type atomic force microscopy. All tests were conducted in wet state with the final aim of simulating scaffold real operating conditions. The films showed two distinct Young Moduli populations, which can be ascribed to polyurethane hard and soft segments. In the scaffold, the application of a thermal cooling gradient during phase separation was responsible for a nanoscale polymer chain organization in a preferred direction. At the macroscale, the porous matrices showed a Young Modulus of about 1.5 MPa in dry condition and 0.3 MPa in wet state. The combination of nanoscale and macroscale values as well as the aligned structure are in accordance with stiffness and structure required for scaffolds used for the regeneration of soft tissues such as muscles. (c) 2014 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 103A: 162-169, 2015.
机译:应该在模拟其体外或体内工作状态的条件下,对纳米级和纳米级的生物材料进行机械测试,以确认其在组织工程应用中的适用性。在本文中,分别通过拉伸试验和压痕型原子力显微镜对通过热压和热诱导相分离制得的聚酯-聚氨酯基薄膜和多孔支架分别进行了宏观和纳米力学表征。所有测试均在潮湿状态下进行,最终目的是模拟脚手架的实际运行条件。影片显示了两个不同的杨氏模量,可以归因于聚氨酯的硬链段和软链段。在支架中,在相分离过程中施加热冷却梯度是导致纳米级聚合物链组织在优选方向上的原因。在宏观上,多孔基体在干燥条件下的杨氏模量约为1.5 MPa,在潮湿状态下的杨氏模量约为0.3 MPa。纳米级和宏观级值的组合以及对齐的结构符合用于软组织(例如肌肉)再生的支架所需的刚度和结构。 (c)2014 Wiley Periodicals,Inc.J Biomed Mater Res Part A:103A:162-169,2015。

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