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基于光学塔姆态拓扑界面模式激发的高度可调谐光吸收器

Highly Tunable Light Absorber Based on Topological Interface Mode Excitation of Optical Tamm State.

作者信息

Liu Xiangjun, Shi Jingxu, Wang Yixuan, Sun Shiyao, Wang Xiangfu

机构信息

College of Electronic and Optical Engineering & College of Flexible Electronics (Future Technology), Nanjing University of Posts and Telecommunications, Nanjing 210023, China.

Yunnan Key Laboratory of Electromagnetic Materials and Devices, Kunming 650091, China.

出版信息

Sensors (Basel). 2024 Sep 5;24(17):5772. doi: 10.3390/s24175772.

Abstract

Optical absorbers based on Tamm plasmon states are known for their simple structure and high operational efficiency. However, these absorbers often have limited absorption channels, and it is challenging to continuously adjust their light absorption rates. Here, we propose a Tamm plasmon state optical absorber composed of a layered stack structure consisting of one-dimensional topological photonic crystals and graphene nano-composite materials. Using the four-by-four transfer matrix method, we investigate the structural relationship of the absorber. Our results reveal that topological interface states (TISs) effectively excite the optical Tamm state (OTS), leading to multiple absorption peaks. This expands the number of absorption channels, with the coupling number of the TIS determining the transmission quality of these channels-a value further adjustable by the period number of the photonic crystals. Tuning the filling factor, refractive index, and thickness of the graphene nano-composite material allows for a wide range of control over the device's absorption rate, from 0 to 1. Additionally, adjusting the defect layer thickness, incident angle, and Fermi energy enables us to control the absorber's operational bandwidth and the switching of its absorption effect. This work presents a new approach to expanding the tunability of optoelectronic devices.

摘要

基于塔姆等离激元态的光吸收器以其结构简单和运行效率高而闻名。然而,这些吸收器的吸收通道往往有限,且持续调节其光吸收率具有挑战性。在此,我们提出一种由一维拓扑光子晶体和石墨烯纳米复合材料组成的层状堆叠结构的塔姆等离激元态光吸收器。利用四乘四传输矩阵法,我们研究了该吸收器的结构关系。我们的结果表明,拓扑界面态(TISs)有效地激发了光学塔姆态(OTS),导致多个吸收峰。这增加了吸收通道的数量,TIS的耦合数决定了这些通道的传输质量——该值可通过光子晶体的周期数进一步调节。调节石墨烯纳米复合材料的填充因子、折射率和厚度,可对器件的吸收率进行从0到1的广泛控制。此外,调整缺陷层厚度、入射角和费米能量,使我们能够控制吸收器的工作带宽及其吸收效果的切换。这项工作提出了一种扩展光电器件可调谐性的新方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/69fb/11398185/26e4ef52b808/sensors-24-05772-g001.jpg

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