等离子光子晶体中的可调谐拓扑边缘态

Mingjie Zhou, Haiyun Tan, L. Zhuge, Xuemei Wu
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摘要

在这项研究中,我们发现了一种位于等离子体光子晶体(PPCs)与传统光子晶体界面的边缘态,它取决于光子带隙的特性而非表面缺陷。模拟和理论分析表明,通过调整等离子体密度,我们可以改变等离子体光子晶体光子带隙的拓扑特性,使其不同于传统 PC 的光子带隙,从而激发或关闭拓扑边缘态。我们进一步讨论了等离子体参数对边缘态特性的影响,结果表明,随着等离子体密度的增加,PPCs 的第一个光子带隙(PBG)会被关闭,然后重新打开,从而导致带反转,改变 PPCs 的 PBG 特性。我们可以通过等离子体控制边缘态的产生,并调整边缘态的频率和强度。边缘态出现后,随着等离子体密度的进一步增加,PPCs 的第一个 PBG 将转向高频并加深。边缘态的频率将向更高频率移动,其强度也会增加。我们通过增加阵列数量来增加 PPCs 的第一 PBG 深度,结果发现当 PPCs 阵列数量增加时,只有边缘态的强度会增加,而频率保持不变。因此,可以通过等离子体密度和阵列数量等参数灵活调节边缘态的频率和强度。我们的工作展示了等离子体光子晶体中非三维边缘态的特性,相信能为基于边缘态的应用提供一些指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Tunable topological edge state in plasma photonic crystals
In this work, we found a kind of edge state located at the interface between plasma photonic crystals (PPCs) and traditional photonic crystals, which depends on the property of the photonic band gap rather than the surface defect. Simulation and theoretical analysis show that by adjusting plasma density, we can change the topological characteristics of the photonic bandgap of PPCs, making it different from the photonic bandgap of traditional PCs, and thus excite or close the topological edge states. We further discussed the influence of plasma parameters on edge state characteristics, and the results showed that as the plasma density increased, the first photonic band gap (PBG) of the PPCs would be closed and then be reopened, resulting in band inversion and a change in the PBG properties of the PPCs. We can control the generation of edge states through plasma, and adjust the frequency and strength of the edge states. After the appearance of edge states, as the plasma density further increases, the first PBG of the PPCs will shift towards high frequencies and deepen. The frequency of edge states will shift towards higher frequencies, and their strength will also increase. We increased the first PBG depth of the PPCs by increasing the number of arrays, and found that when the number of the PPCs arrays increased, only the intensity of edge states would increase while the frequency remained unchanged. Therefore, flexible adjustment of edge states frequency and intensity can be achieved through the parameters of plasma density and array quantity. Our work demonstrates the properties of non-trivial edge states in plasma photonic crystals, which we believe can provide some guidance for applications based on edge states.
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