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In situ reduction of gold nanoparticles in PDMS matrices and applications for large strain sensing

机译:PDMS基质中金纳米颗粒的原位还原及其在大应变传感中的应用

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摘要

Various types of strain sensors have been developed and widely used in the field for monitoring the mechanical deformation of structures. However, conventional strain sensors are not suited for measuring large strains associated with impact damage and local crack propagation. In addition, strain sensors are resistive-type transducers, which mean that the sensors require an external electrical or power source. In this study, a gold nanoparticle (GNP)-based polymer composite is proposed for large strain sensing. Fabrication of the composites relies on a novel and simple in situ GNP reduction technique that is performed directly within the elastomeric poly(dimethyl siloxane) (PDMS) matrix. First, the reducing and stabilizing capacities of PDMS constituents and mixtures are evaluated via visual observation, ultraviolet-visible (UV-Vis) spectroscopy, and transmission electron microscopy. The large strain sensing capacity of the GNP-PDMS thin film is then validated by correlating changes in thin film optical properties (e.g., maximum UV-Vis light absorption) with applied tensile strains. Also, the composite's strain sensing performance (e.g., sensitivity and sensing range) is also characterized with respect to gold chloride concentrations within the PDMS mixture.
机译:已经开发出各种类型的应变传感器并将其广泛用于监视结构的机械变形的领域。但是,传统的应变传感器不适用于测量与冲击损伤和局部裂纹扩展相关的大应变。另外,应变传感器是电阻型传感器,这意味着传感器需要外部电源。在这项研究中,提出了一种基于金纳米粒子(GNP)的聚合物复合材料用于大应变传感。复合材料的制造依赖于一种新颖且简单的原位GNP还原技术,该技术可直接在弹性聚二甲基硅氧烷(PDMS)基质中进行。首先,通过目测,紫外-可见(UV-Vis)光谱和透射电子显微镜评估PDMS成分和混合物的还原和稳定能力。然后通过使薄膜光学性质的变化(例如最大的UV-Vis光吸收)与所施加的拉伸应变相关联来验证GNP-PDMS薄膜的大应变感测能力。而且,还相对于PDMS混合物中的氯化金浓度来表征复合材料的应变感测性能(例如,灵敏度和感测范围)。

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