An ultrathin all-dielectric terahertz metamaterial with quasi-BIC induced angular dispersion

IF 6.6 2区 材料科学 Q1 CHEMISTRY, PHYSICAL Nanoscale Horizons Pub Date : 2025-04-09 DOI:10.1039/D5NH00011D
Daoye Zheng and Yu-Sheng Lin
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Abstract

One typical characteristic of conventional all-dielectric terahertz metamaterials is their thickness, which is designed to be dozens of, or even one hundred microns, to reduce the leakage of the resonant field to the substrate. In the frequency range of 2 THz to 3 THz, we propose a substrate-free ultra-thin all-dielectric terahertz metamaterial (UATM) composed of a silicon (Si) dual-ellipse array and silicon dioxide (SiO2) supporting layer with thicknesses of 5 μm and 2 μm, respectively. The UATM exhibits quasi-bound state in the continuum (quasi-BIC) modes related to the tilt angle and period parameters. Moreover, due to the strong electromagnetic field near the interfaces and large interaction area, the UATM exhibits a high refractive index sensitivity exceeding 1.00 THz per RIU. Furthermore, at oblique incident angles ranging from 0° to 25°, the resonant quality factor (Q-factor) of the UATM remains higher than 100, and the sensitivities to the incident angle are 22.53 and 26.17 GHz per degree with a linear range of 0.498 THz and 0.438 THz, respectively. These properties indicate the potential applications of the UATM in high sensitivity biochemical sensing and multifunctional narrowband filtering fields.

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具有准bic诱导角色散的超薄全介电太赫兹超材料。
传统的全介电太赫兹超材料的一个典型特征是它们的厚度,它被设计为几十微米,甚至100微米,以减少谐振场对衬底的泄漏。在2 ~ 3太赫兹频率范围内,我们提出了一种由硅(Si)双椭圆阵列和厚度分别为5 μm和2 μm的二氧化硅(SiO2)支撑层组成的无衬底超薄全介电太赫兹超材料(UATM)。与倾斜角度和周期参数有关,UATM在连续模式中表现出准束缚态。此外,由于界面附近的强电磁场和大的相互作用面积,UATM具有很高的折射率灵敏度,超过1.00 THz / RIU。此外,在0°~ 25°的斜入射角范围内,UATM的谐振品质因子(q因子)保持在100以上,对入射角的灵敏度分别为22.53和26.17 GHz /度,线性范围分别为0.498 THz和0.438 THz。这些特性表明了UATM在高灵敏度生化传感和多功能窄带滤波领域的潜在应用前景。
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来源期刊
Nanoscale Horizons
Nanoscale Horizons Materials Science-General Materials Science
CiteScore
16.30
自引率
1.00%
发文量
141
期刊介绍: Nanoscale Horizons stands out as a premier journal for publishing exceptionally high-quality and innovative nanoscience and nanotechnology. The emphasis lies on original research that introduces a new concept or a novel perspective (a conceptual advance), prioritizing this over reporting technological improvements. Nevertheless, outstanding articles showcasing truly groundbreaking developments, including record-breaking performance, may also find a place in the journal. Published work must be of substantial general interest to our broad and diverse readership across the nanoscience and nanotechnology community.
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