Vanadium oxide metal-insulator phase transition in different types of one-dimensional photonic microcavities

F. Scotognella
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Abstract

The optical properties of vanadium dioxide (VO2) can be tuned via metal-insulator transition. In this work, different types of one-dimensional photonic structure-based microcavities that embed vanadium dioxide have been studied in the spectral range between 900 nm and 2000 nm. In particular, VO2 has been sandwiched between: i) two photonic crystals made of SiO2 and ZrO2; ii) two aperiodic structures made of SiO2 and ZrO2 that follow the Thue-Morse sequence; iii) two disordered photonic structures, made of SiO2 and ZrO2 in which the disorder is introduced either by a random sequence of the two materials or by a random variation of the thicknesses of the layers; iv) two four material-based photonic crystals made of SiO2, Al2O3, Y2O3, and ZrO2. The ordered structures i and iv show, respectively, one and two intense transmission valleys with defect modes, while the aperiodic and disordered structures ii and iii show a manifold of transmission valleys due to their complex layered configurations. The metal-insulator transition of VO2, controlled by temperature, results in a modulation of the optical properties of the microcavities.
不同类型一维光子微腔中的钒氧化物-金属-绝缘体相变
二氧化钒(VO2)的光学性质可以通过金属绝缘体跃迁来调节。本文在900 ~ 2000 nm的光谱范围内研究了不同类型的嵌入二氧化钒的一维光子结构微腔。特别是,VO2被夹在:i)由SiO2和ZrO2组成的两个光子晶体之间;ii)由SiO2和ZrO2组成的两个遵循Thue-Morse序列的非周期结构;iii)由SiO2和ZrO2制成的两种无序光子结构,其中无序是由两种材料的随机序列或层厚度的随机变化引入的;iv)由SiO2、Al2O3、Y2O3和ZrO2组成的两种四种材料基光子晶体。有序结构i和iv分别表现出一个和两个具有缺陷模式的强透射谷,而非周期和无序结构ii和iii由于其复杂的层状结构而表现出多种透射谷。由温度控制的VO2的金属-绝缘体转变导致了微腔光学特性的调制。
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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