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Characterization of Local Elastic Modulus in Confined Polymer Films via AFM Indentation

机译:通过AFM压痕表征聚合物薄膜中的局部弹性模量

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The properties of polymers near an interface are altered relative to their bulk value due both to chemical interaction and geometric confinement effects. For the past two decades, the dynamics of polymers in confined geometries (thin polymer film or nanocomposites with high-surface area particles) has been studied in detail, allowing progress to be made toward understanding the origin of the dynamic effects near interfaces. Observations of mechanical property enhancements in polymer nanocomposites have been attributed to similar origins. However, the existing measurement methods of these local mechanical properties have resulted in a variety of conflicting results on the change of mechanical properties of confined polymers. Here, an atomic force microscopy (AFM)-based method is demonstrated that directly measures the mechanical properties of polymers adjacent to a substrate with nanometer resolution. This method allows us to consistently observe the gradient in mechanical properties away from a substrate in various materials systems, and paves the way for a unified understanding of thermodynamic and mechanical response of polymers. This gradient is both longer (up to 170 nm) and of higher magnitude (50% increase) than expected from prior results. Through the use of this technique, we will be better able to understand how to design polymer nanocomposites and polymeric structures at the smallest length scale, which affects the fields of structures, electronics, and healthcare.
机译:由于化学相互作用和几何限制效应,界面附近的聚合物的性质相对于其体积值发生了变化。在过去的二十年中,对受限几何结构(具有高表面积颗粒的薄聚合物膜或纳米复合材料)中聚合物的动力学进行了详细研究,从而在理解界面附近动力学效应的起源方面取得了进展。聚合物纳米复合材料机械性能增强的观察已归因于相似的起源。但是,这些局部机械性能的现有测量方法已导致受限聚合物机械性能变化的各种矛盾结果。在这里,基于原子力显微镜(AFM)的方法被证明可以直接以纳米分辨率测量与基材相邻的聚合物的机械性能。这种方法使我们能够在各种材料系统中始终观察远离基材的机械性能梯度,并为统一理解聚合物的热力学和机械响应铺平了道路。该梯度比以前的结果预期的更长(最大170 nm),幅度更大(增加了50%)。通过使用该技术,我们将能够更好地理解如何以最小的长度尺度设计聚合物纳米复合材料和聚合物结构,从而影响结构,电子学和医疗保健领域。

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