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Nanomechanical Testing of Hydrated Biomaterials: Sample Preparation, Data Validation and Analysis

机译:水合生物材料的纳米力学测试:样品制备,数据验证和分析

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Implants, tissue engineering scaffold materials, drug delivery and bio-micro electromechanical systems (BioMEMs) all use polymer or hydrogel materials. These applications require both mechanical performance and successful integration of the material into a biological environment. Mechanical strength, storage and loss moduli, wear resistance and surface adhesion properties are all critical in biomedical device design and can be determined using nanoindentation. The difficulty of obtaining large samples of specialized materials, and the complexity of testing soft materials in traditional materials testing apparatus, make nanoindentation an attractive alternative. Our previous research using nanoindentation to measure the surface mechanical properties of non-hydrated polymers led to improvement in nanoindentation testing protocols. One of the major challenges in using this technique for hydrogels and tissues is maintaining and controlling hydration of the materials during the test. Here we describe the design of a microfluidic platform for nanoindentation that facilitates continuous hydration of hydrogel samples and high throughput nanomechanical testing. Data from creep experiments on synthetic, hydrated poly-2-hydroxyethyl methacrylate (poly-HEMA) are presented. In addition, we show data to validate the materials properties determined from nanomechanical testing by complementary testing. Finally, the data is fitted to a phenomenological model for viscoelastic materials, specifically the three-element standard linear solid model used by Cheng et al.
机译:植入物,组织工程支架材料,药物输送和生物微机电系统(BioMEMs)均使用聚合物或水凝胶材料。这些应用既需要机械性能,又需要将材料成功整合到生物环境中。机械强度,存储和损耗模量,耐磨性和表面粘附特性在生物医学设备设计中都是至关重要的,可以使用纳米压痕技术来确定。难以获得大量特殊材料的样品,以及在传统材料测试设备中测试软材料的复杂性,使得纳米压痕成为有吸引力的选择。我们之前使用纳米压痕技术测量非水合聚合物的表面力学性能的研究导致纳米压痕测试方案的改进。在水凝胶和组织中使用该技术的主要挑战之一是在测试过程中维持和控制材料的水合作用。在这里,我们描述了用于纳米压痕的微流体平台的设计,该平台有助于水凝胶样品的连续水合和高通量纳米力学测试。给出了来自合成的,水合的聚甲基丙烯酸2-羟乙酯(poly-HEMA)蠕变实验的数据。此外,我们显示了数据,可以验证通过互补测试从纳米机械测试确定的材料性能。最后,将数据拟合到粘弹性材料的现象学模型,特别是Cheng等人使用的三元素标准线性固体模型。

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