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High-Resolution Mapping of Thermal History in Polymer Nanocomposites: Gold Nanorods as Microscale Temperature Sensors

机译:聚合物纳米复合材料中热历史的高分辨率映射:金纳米棒作为微型温度传感器

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摘要

A technique is reported for measuring and mapping the Maximum internal temperature of a structural epoxy resin with high spatial resolution via the optically detected shape transformation of embedded gold nanorods (AuNRs). Spatially resolved absorption spectra of the nanocomposites are used to determine the frequencies of surface plasmon resonances. From these frequencies the AuNR aspect ratio is calculated using a new analytical approximation for the Mie-Gans scattering theory, which takes into account coincident changes in the local dielectric. Despite changes in the chemical environment, the calculated aspect ratio of the embedded nanorods is found to decrease over time to a steady-state value that depends linearly on the temperature over the range of 100-200 degrees C. Thus, the optical absorption can be used to determine the maximum temperature experienced at a particular location when exposure times exceed the temperature-dependent relaxation time. The usefulness of this approach is demonstrated by mapping the temperature of an internally heated structural epoxy resin with 10 mu m lateral spatial resolution.
机译:据报道,有一种技术可以通过光学检测嵌入的金纳米棒(AuNRs)的形状转变来测量和绘制具有高空间分辨率的结构环氧树脂的最高内部温度。纳米复合材料的空间分辨吸收光谱用于确定表面等离子体激元共振的频率。从这些频率中,使用Mie-Gans散射理论的新分析近似值计算AuNR长宽比,其中考虑了局部电介质的同时变化。尽管化学环境发生了变化,但发现嵌入式纳米棒的计算出的长宽比会随时间降低至稳态值,该值线性依赖于100-200摄氏度范围内的温度。因此,光吸收可以达到当暴露时间超过与温度有关的弛豫时间时,用于确定特定位置的最高温度。通过绘制内部加热的结构化环氧树脂的温度(横向空间分辨率为10μm)来证明这种方法的有效性。

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