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基于时域有限差分法的拓扑微纳结构光谱特性模拟

Spectral Characteristics Simulation of Topological Micro-Nano Structures Based on Finite Difference Time Domain Method.

作者信息

Ma Xiaoran, Du Bairui, Tan Shengwang, Song Haiying, Liu Shibing

机构信息

Strong-Field and Ultrafast Photonics Lab, Faculty of Materials and Manufacturing, Beijing University of Technology, Beijing 100124, China.

Key Laboratory of Trans-Scale Laser Manufacturing Technology, Ministry of Education, Beijing University of Technology, Beijing 100124, China.

出版信息

Nanomaterials (Basel). 2021 Oct 6;11(10):2622. doi: 10.3390/nano11102622.

Abstract

Natural structural colors inspire people to obtain the technology of spectral characteristics by designing and preparing micro-nano structures on the material's surface. In this paper, the finite difference time domain (FDTD) method is used to simulate the spectral selectivity of micro-nano grating on an Au surface, and the spectral response characteristics of different physical parameters to the incident light are obtained. The results show that, when the grating depth is shallow, the absorption peaks of TM polarized incident light on the material surface take on redshifts with the increase in the grating period. Meanwhile, when the depth-width ratio of the grating structure is high, the absorption peak appears in the reflection spectrum and presents a linear red shift with the increase in the grating period after the linearly polarized light TE wave incident on the surface of the micro-nano structure. At the same time, the wavelength of the absorption peak of the reflection spectrum and the grating period take on one-to-one correspondence relations, and when the TM polarized light is incident, the reflection spectrum exhibits obvious selective absorption characteristic peaks at certain grating periods (for example, when the period is 0.4 μm, there are three absorption peaks at the wavelengths of 0.7, 0.95, and 1.55 μm). These simulation results can provide a good theoretical basis for the preparation of micro-nano structures with spectral regulation function in the practical application.

摘要

天然结构色启发人们通过在材料表面设计和制备微纳结构来获得光谱特性技术。本文采用时域有限差分(FDTD)方法模拟了金表面微纳光栅的光谱选择性,得到了不同物理参数对入射光的光谱响应特性。结果表明,当光栅深度较浅时,材料表面TM偏振入射光的吸收峰随光栅周期的增加而发生红移。同时,当光栅结构的深宽比很大时,线偏振光TE波入射到微纳结构表面后,反射光谱中出现吸收峰,并随光栅周期的增加呈现线性红移。同时,反射光谱吸收峰的波长与光栅周期呈一一对应关系,当TM偏振光入射时,反射光谱在一定光栅周期下呈现明显的选择性吸收特征峰(例如,当周期为0.4μm时,在波长0.7、0.95和1.55μm处有三个吸收峰)。这些模拟结果可为实际应用中制备具有光谱调控功能的微纳结构提供良好的理论依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e6c/8539221/31db28e42ae6/nanomaterials-11-02622-g001.jpg

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