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Spatial temperature mapping within polymer nanocomposites undergoing ultrafast photothermal heating via gold nanorods

机译:空间温度映射在聚合物纳米复合材料进行超快的光热光谱分析通过金纳米棒加热

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Heat emanates from gold nanorods (GNRs) under ultrafast optical excitation of the localized surface plasmon resonance. The steady state nanoscale temperature distribution formed within a polymer matrix embedded with GNRs undergoing pulsed femtosecond photothermal heating is determined experimentally using two independent ensemble optical techniques. Physical rotation of the nanorods reveals the average local temperature of the polymer melt in the immediate spatial volume surrounding each rod while fluorescence of homogeneously-distributed perylene molecules monitors temperature over sample regions at larger distances from the GNRs. Polarization-sensitive fluorescence measurements of the perylene probes provide an estimate of the average size of the quasi-molten region surrounding each nanorod (that is, the boundary between softened polymer and solid material as the temperature decreases radially away from each particle) and distinguishes the steady state temperature in the solid and melt regions. Combining these separate methods enables nanoscale spatial mapping of the average steady state temperature distribution caused by ultrafast excitation of the GNRs. These observations definitively demonstrate the presence of a steady-state temperature gradient and indicate that localized heating via the photothermal effect within materials enables nanoscale thermal manipulations without significantly altering the bulk sample temperature in these systems. These quantitative results are further verified by re-orienting nanorods within a solid polymer nanofiber without inducing any morphological changes to the highly temperature-sensitive nanofiber surface. Temperature differences of 70-90 °C were observed over a distances of ~100 nm.
机译:热源自金纳米棒(GNRs)超快光激发的本地化表面等离子体共振。形成纳米尺度的温度分布聚合物基质嵌入式GNRs经历飞秒脉冲光热光谱分析加热决定使用两个独立的实验整体光学技术。纳米棒显示当地的平均水平聚合物熔体的温度立即周围空间体积每一杆荧光的均匀分布二萘嵌苯分子监控温度在更大的距离GNRs样本地区。Polarization-sensitive荧光测量苝醌类化合物的探测提供了一种估算的quasi-molten地区的平均大小周围的每一个奈米棒(即边界软化聚合物和固体材料之间温度降低径向远离粒子)和区分稳定状态温度在固体和融化区域。结合这些方法使分离纳米空间映射的平均稳定引起的温度分布状态超速GNRs的激发。观察决定性地证明一个稳态温度梯度的存在表明局部加热通过在材料使光照效果纳米热操作没有显著改变大块样品在这些系统中温度。结果进一步验证了调整纳米棒在固体聚合物纳米纤维诱导任何形态改变高度热敏纳米纤维表面。70 - 90°C的温度差异~ 100海里的距离。

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