Tunable Multi-Functional Metamaterial Based on Photosensitive Silicon for Unidirectional Reflectionlessness, Polarization Conversion, and Asymmetric Transmission.

IF 3.1 3区 材料科学 Q3 CHEMISTRY, PHYSICAL
Materials Pub Date : 2025-06-03 DOI:10.3390/ma18112614
Xue Ren, Yiwen Zhang, Yingqiao Zhang, Xingri Jin
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引用次数: 0

Abstract

We propose a tunable multi-functional metamaterial composed of two pairs of gold corner resonators interconnected with photosensitive silicon, operating in the terahertz range. This design achieves dual-band unidirectional reflectionlessness, polarization conversion, and asymmetric transmission for linearly polarized waves, regardless of whether the photosensitive silicon is in the insulating or conductivity state. When the photosensitive silicon transitions from the insulating state to the conductivity state, its conductivity increases significantly, resulting in a frequency shift phenomenon in the functional peak frequencies. Numerical simulations demonstrate the structure's robust performance in dual-band unidirectional reflectionlessness and its significant asymmetric transmission, with minimal sensitivity to variations in the incident angle and photosensitive silicon sheet length. By integrating multiple functionalities and enabling frequency tunability through the control of photosensitive silicon conductivity, this design offers a reconfigurable solution for THz applications, such as switches, polarization converters, and modulators.

基于光敏硅的可调谐多功能超材料的单向无反射、偏振转换和非对称传输。
我们提出了一种可调谐的多功能超材料,由两对与光敏硅互连的金角谐振器组成,在太赫兹范围内工作。本设计实现了线极化波的双波段单向无反射、偏振转换和不对称传输,无论光敏硅是处于绝缘状态还是导电状态。当光敏硅从绝缘状态过渡到导电状态时,其电导率显著增加,导致功能峰值频率出现频移现象。数值模拟证明了该结构在双波段单向无反射和显著的非对称传输方面的鲁棒性能,对入射角和光敏硅片长度变化的敏感性极小。通过集成多种功能并通过控制光敏硅电导率实现频率可调性,该设计为太赫兹应用(如开关、极化变换器和调制器)提供了可重构的解决方案。
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
Materials
Materials MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
5.80
自引率
14.70%
发文量
7753
审稿时长
1.2 months
期刊介绍: Materials (ISSN 1996-1944) is an open access journal of related scientific research and technology development. It publishes reviews, regular research papers (articles) and short communications. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Materials provides a forum for publishing papers which advance the in-depth understanding of the relationship between the structure, the properties or the functions of all kinds of materials. Chemical syntheses, chemical structures and mechanical, chemical, electronic, magnetic and optical properties and various applications will be considered.
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