小型化
材料科学
光电子学
共振(粒子物理)
Q系数
波长
缩放比例
光子学
太赫兹辐射
光学
谐振器
表面等离子体激元
质量(理念)
超材料
极化子
可重构性
声子
光子晶体
模式(计算机接口)
多波段设备
导模共振
纳米技术
作者
Tao Cheng,W. J. Li,Kaili Sun,Baole Sun,J. Wang,Tianbao Zhao,Huanhuan Zhao,L. H. Liu,Zhanghua Han,Jia-Yue Yang
出处
期刊:ACS Photonics
[American Chemical Society]
日期:2025-12-22
卷期号:13 (2): 614-623
标识
DOI:10.1021/acsphotonics.5c02761
摘要
The far-infrared (FIR) spectrum hosts rich light–matter interactions, enabling applications in medicine, energy, and sensing. However, the intrinsic scaling of the resonance wavelength with structural thickness renders FIR devices bulky, hindering miniaturization and reducing efficiency. Here, we design a hybrid metasurface by combining dual Reststrahlen band SrTiO3 with high-index Ge, utilizing surface phonon polaritons (SPhPs) to enable FIR resonances in ultrathin meta-atoms. Experiments reveal an SPhP resonance at wavelengths up to λ = 21.9 μm using meta-atoms with only h = 70 nm height (h/λ = 0.32%), markedly lower than previously reported ratios. Unlike traditional phonon-polaritonic platforms, our design features angle-insensitive resonances and achieves a high Q quality factor (Q ≈ 100). Building on these advantages, we conducted a proof-of-concept polymer detection study in which the FIR mode enabled efficient thickness sensing and material identification, with thinner metasurfaces demonstrating superior performance. Overall, this work clarifies how to reconcile long-wavelength resonances with ultrathin device geometries, providing practical guidance for the development of far-infrared technologies.
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