太赫兹辐射
超材料
生物分子
电介质
材料科学
纳米光子学
光电子学
微流控
生物传感器
纳米技术
微波食品加热
俘获
物理
生态学
量子力学
生物
作者
Tingling Lin,Yi Huang,Shuncong Zhong,Tingting Shi,Fuwei Sun,Yujie Zhong,Qiuming Zeng,Qiukun Zhang,Daxiang Cui
标识
DOI:10.1016/j.bios.2024.116126
摘要
Electromagnetic metamaterials feature the capability of squeezing photons into hotspot regions of high intensity near-field enhancement for strong light-matter interaction, underpinning the next generation of emerging biosensors. However, randomly dispersed biomolecules around the hotspots lead to weak interactions. Here, we demonstrate an all-silicon dielectric terahertz metamaterial sensor design capable of passively trapping biomoleculars into the resonant cavities confined with powerful electric field. Specifically, multiple controllable high-quality factor resonances driven by bound states in the continuum (BIC) are realized by employing longitudinal symmetry breaking. The dielectric metamaterial sensor with nearly 15.2 experimental figure-of-merit enabling qualitative and quantitative identification of different amino acids by delivering biomolecules to the hotspots for strong light-matter interactions. It is envisioned that the presented strategy will enlighten high-performance meta-sensors design from microwaves to visible frequencies, and serve as a potential platform for microfluidic sensing, biomolecular capture, and sorting devices.
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