Theoretical and Experimental Investigation of the Optical Properties of Nano nickel Films

L. Kalandadze, O. Nakashidze, N. Gomidze, I. Jabnidze
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Abstract

It is well-known that the physical properties of already explored materials change in the process of their transformation into nanocrystals. The investigation of the reciprocal influence of the microstructure and the composition on the physical properties of nano-dispersive medium had become the goal of intensive exploration. In the given paper, using the nano Ni films nano-dispersive medium we consider theoretically and experimentally the impact of the structural parameters on the optical properties of the nanodispersive structures. In this work the optical properties of nano-dispersive structures are represented within the theoretical Maxwell-Garnett model. The behavior of the optical frequency dependences of nano Ni films was interpreted in the framework of the effective medium approximation in two cases: q<0.5 and 0.5< q<1 where q is the occupancy of the space of the nano-dispersive medium with particles. In this approach an effective refractive index (n+ik) of the nano structures can be calculated as a function of the properties of the matrix εm, q, and particle shapes. These calculations demonstrated a good accordance between the theoretical and the experimental results.
纳米镍薄膜光学性质的理论与实验研究
众所周知,已经探索的材料在转变为纳米晶体的过程中,其物理性质会发生变化。研究纳米分散介质的微观结构和组成对其物理性质的相互影响已成为人们深入研究的目标。本文利用纳米Ni薄膜作为纳米分散介质,从理论上和实验上考虑了结构参数对纳米分散结构光学性能的影响。在这项工作中,纳米色散结构的光学性质是在理论麦克斯韦-加内特模型中表示的。在有效介质近似的框架下,在两种情况下解释了纳米Ni薄膜的光学频率依赖行为:q<0.5和0.5< q<1,其中q是纳米色散介质中粒子的占用空间。在这种方法中,纳米结构的有效折射率(n+ik)可以作为矩阵εm, q和粒子形状的函数来计算。这些计算表明理论结果与实验结果吻合得很好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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