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首页> 外文期刊>Micromachines >Femtosecond Laser Irradiation of Plasmonic Nanoparticles in Polymer Matrix: Implications for Photothermal and Photochemical Material Alteration
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Femtosecond Laser Irradiation of Plasmonic Nanoparticles in Polymer Matrix: Implications for Photothermal and Photochemical Material Alteration

机译:飞秒激光辐照聚合物基质中的等离子体纳米颗粒:对光热和光化学物质改变的影响

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摘要

We analyze the opportunities provided by the plasmonic nanoparticles inserted into the bulk of a transparent medium to modify the material by laser light irradiation. This study is provoked by the advent of photo-induced nano-composites consisting of a typical polymer matrix and metal nanoparticles located in the light-irradiated domains of the initially homogeneous material. The subsequent irradiation of these domains by femtosecond laser pulses promotes a further alteration of the material properties. We separately consider two different mechanisms of material alteration. First, we analyze a photochemical reaction initiated by the two-photon absorption of light near the plasmonic nanoparticle within the matrix. We show that the spatial distribution of the products of such a reaction changes the symmetry of the material, resulting in the appearance of anisotropy in the initially isotropic material or even in the loss of the center of symmetry. Second, we analyze the efficiency of a thermally-activated chemical reaction at the surface of a plasmonic particle and the distribution of the product of such a reaction just near the metal nanoparticle irradiated by an ultrashort laser pulse.
机译:我们分析了插入透明介质主体中的等离激元纳米粒子提供的机会,以通过激光辐照来改性材料。这项研究是由光诱导的纳米复合材料引起的,该复合材料由典型的聚合物基质和位于最初均质材料的光辐射域中的金属纳米颗粒组成。飞秒激光脉冲对这些区域的后续照射促进了材料性能的进一步改变。我们分别考虑了两种不同的物质变更机制。首先,我们分析由基质内等离子体纳米粒子附近的光的两光子吸收引发的光化学反应。我们表明,这种反应的产物的空间分布改变了材料的对称性,导致在最初各向同性的材料中出现了各向异性,甚至导致对称中心的丧失。其次,我们分析了等离激元粒子表面的热活化化学反应的效率,以及这种反应的产物在超短激光脉冲辐射的金属纳米粒子附近的分布。

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