含有金属纳米球形颗粒的复合材料的光学吸收

N. Pavlyshche, A. Korotun, V. P. Kurbatsky
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摘要

本文探讨了带有随机取向金属球形颗粒夹杂物的纳米复合材料的光吸收问题,前提是这种夹杂物的体积很小。考虑到球状夹杂物的轴对称性,在有效介质模型中获得了金属介电纳米复合材料的有效介电函数和吸收系数的频率依赖性表达式。使用动力学方法引入了电子的有效弛豫速率。在夹杂物颗粒呈拉长和扁平纳米球状的情况下,进行了数值计算。计算结果表明存在两个吸收系数最大值,分别对应于纵向和横向表面等离子共振。分析了有效介电函数和吸收系数频率相关性最大值的位置和大小随球形颗粒-夹杂物的尺寸和形状变化而发生的变化。结果表明,球形颗粒半轴的长度差越大,有效介电函数和吸收系数的最大值之间的距离就越大,而且曲线的形状取决于球形颗粒夹杂物的偏心率。研究发现,最大值的位置在很大程度上受夹杂物颗粒和基质介质材料选择的影响,而最大值的高度在很大程度上受纳米颗粒的形状及其在复合介质中的体积含量的影响。事实证明,根据纳米粒子-夹杂物的材料,吸收系数的两个最大值都可以在光谱的可见光部分(金夹杂物)或紫外线部分(铝夹杂物)找到。也有可能一个最大值在光谱的可见光部分,另一个在紫外线部分,Pd、Pt、Cu、Ag 的夹杂物就是这种情况。
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Optical absorption of composites with metallic nanosized spheroidal particles
The paper considers the problem of light absorption by a nanocomposite with randomly oriented metal spheroidal particles-inclusions, provided that the volume content of such inclusions is small. Expressions for the frequency dependences of the effective dielectric function and the absorption coefficient of the metal-dielectric nanocomposite are obtained within the effective medium model taking into account the axial symmetry of spheroidal inclusions. The effective relaxation rate of electrons is introduced using the kinetic approach. Numerical calculations are performed for the cases when inclusion particles have the form of elongated and flattened nanospheroids. The results of the calculations indicate the presence of two maxima of the absorption coefficient, which correspond to longitudinal and transverse surface plasmon resonance. The change in the position and magnitude of the maxima of the frequency dependences of the effective dielectric function and the absorption coefficient with varying the size and shape of the spheroidal particles-inclusions is analyzed. It is shown that the greater the difference in the lengths of the semi-axes of the spheroids, the greater the distance between the maxima of the effective dielectric function and the absorption coefficient, and the shape of the curves depends on the eccentricity of spheroidal inclusions. It has been found that the position of the maxima is significantly influenced by the choice of the material of the inclusion particles and the matrix medium, while the height of the maxima is largely influenced by the shape of the nanoparticles, as well as their volume content in the composite medium. It is proved that, dependent on the material of nanoparticles-inclusions, both maxima of the absorption coefficient can be found in the visible part of the spectrum (for Au inclusions) or in the ultraviolet (for Al inclusions). It is also possible that one maximum lies in the visible part of the spectrum, and the other in the ultraviolet, which is the case for inclusions of Pd, Pt, Cu, Ag.
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