可变形时调线介质谐振器

IF 2.5 3区 物理与天体物理 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Mykola Khobzei , Vladyslav Tkach , Dmytro Vovchuk , Anna Mikhailovskaya , Serhii Haliuk , Andrii Samila , Jurgis Porins , Toms Salgals , Vjaceslavs Bobrovs , Pavel Ginzburg
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引用次数: 0

摘要

时间自由度为控制与结构化媒体的电磁相互作用提供了新的能力。虽然与载流子振荡周期相当的有效材料磁化率的快速变化表明出现了新的特殊现象,但实验实现滞后于理论预测。然而,在有效介质中缓慢的、实际可实现的参数变化所激发的效果既具有根本的兴趣,又具有直接的实际应用。在这里,我们在一个可变形的法布里-珀罗谐振器中进行了模态层次的全面研究,该谐振器由线阵列构成,嵌入在可压缩的介质主机中。导线介质的晶格参数可以在3倍范围内(从10到30 mm)调节,从而产生非凡的电磁可调性。此外,谐振腔响应表现出对机械变形的极端敏感性,因为超材料组装中的谐振层次强烈依赖于晶格常数。具体来说,晶格常数0.3 mm的变化(小至~ 0.002λ)会使法布里-珀罗共振频率范围偏移1.7-1.8 GHz。由于其特殊的响应性,可变形电磁超材料可以作为自适应组件,实现新型无线通信,其中频率,带宽和信号方向可以实时动态调整,以适应不同的环境条件和用户需求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deformable time-modulated wire media resonators
Temporal degrees of freedom open new capabilities to control electromagnetic interactions with structured media. While rapid changes in effective material susceptibilities, comparable to the carrier oscillation period, suggest emerging new peculiar phenomena, experimental realizations lag theoretical predictions. However, effects inspired by slow, practically realizable parametric changes in effective media possess both fundamental interest and immediate practical applications. Here we perform comprehensive studies of modal hierarchy in a deformable Fabry-Perot resonator, constructed from a wire array, embedded in a compressible dielectric host. The lattice parameter of the wire media can be adjusted within a 3-fold range (from 10 to 30 mm), resulting in extraordinary electromagnetic tunability. Furthermore, the resonator response demonstrates an extreme sensitivity to mechanical deformation as resonance hierarchy in metamaterial assembly strongly depends on the lattice constant. Specifically, a 0.3 mm change in the lattice constant, being as small as ∼0.002λ, shifts the Fabry-Perot resonance frequency range by 1.7–1.8 GHz. Due to their exceptional responsiveness, deformable electromagnetic metamaterials can function as adaptive components, enabling new types of wireless communications where the frequency, bandwidth, and signal direction can be dynamically adjusted in real-time to accommodate varying environmental conditions and user demands.
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来源期刊
CiteScore
5.00
自引率
3.70%
发文量
77
审稿时长
62 days
期刊介绍: This journal establishes a dedicated channel for physicists, material scientists, chemists, engineers and computer scientists who are interested in photonics and nanostructures, and especially in research related to photonic crystals, photonic band gaps and metamaterials. The Journal sheds light on the latest developments in this growing field of science that will see the emergence of faster telecommunications and ultimately computers that use light instead of electrons to connect components.
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