Exploring Photonic Crystals: Band Structure and Topological Interface States

IF 1.9 Q3 PHYSICS, CONDENSED MATTER
M. de Dios‐Leyva, Andy Márquez-González, C. Duque
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引用次数: 0

Abstract

The physical mechanisms supporting the existence of topological interface modes in photonic structures, formed with the concatenation of two finite, N-period, one-dimensional photonic crystals, are investigated. It is shown that these mechanisms originate from a specific configuration of bands and bandgaps of topological origin in the band structure of the concatenated structure. Our analysis reveals that the characteristics of such a configuration depend on the structural parameters, including the number, N, of unit cells, and determine the properties of the corresponding resonant transmission peak. It was shown that the width and maximum value of the transmission peaks decrease with N. These results not only provide new physical insight into the origin and nature of such modes, but also can be used to control and manipulate the transmission peak properties, such as peak values, full width at half maximum (FWHM), and Q-factor, which are of special interest in the fields of optical sensing, filters, etc.
探索光子晶体:能带结构和拓扑界面态
研究了由两个有限n周期一维光子晶体拼接而成的光子结构中支持拓扑界面模式存在的物理机制。结果表明,这些机制源于连接结构的带结构中特定的带构型和拓扑起源的带隙。我们的分析表明,这种结构的特性取决于结构参数,包括单元胞的数量N,并决定了相应的谐振透射峰的特性。结果表明,透射峰的宽度和最大值随n的增加而减小。这些结果不仅为这种模式的起源和性质提供了新的物理见解,而且可以用于控制和操纵传输峰的特性,如峰值、半峰全宽度(FWHM)和q因子,这些特性在光学传感、滤波器等领域中具有特殊的意义。
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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来源期刊
Condensed Matter
Condensed Matter PHYSICS, CONDENSED MATTER-
CiteScore
2.90
自引率
11.80%
发文量
58
审稿时长
10 weeks
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