太赫兹辐射
生物传感器
纳米技术
材料科学
灵敏度(控制系统)
光电子学
领域(数学)
太赫兹光谱与技术
表征(材料科学)
分子生物物理学
极限(数学)
电磁场
检出限
光学传感
消散波
物理
光子学
作者
Junhui Guo,Bing Dong,Eryong Zhang,Qing‐An Tu,Xiaoyong He,Xichuan Wu,Mingjing Liu,Maohua Gong,Yan Meng,Xiang Xi,Hongcheng Wang,Zhen Gao
摘要
The terahertz (THz) spectral regime offers unique opportunities for next-generation biochemical sensing due to its non-destructive, label-free probing capability and strong sensitivity to molecular vibrations. However, conventional THz biosensors remain hampered by intrinsically low-quality factors and limited sensitivity, severely restricting their utility for trace-level biochemical and chemical detection. Here, we report an ultrasensitive THz metasurface biosensor that harnesses quasi-bound states in the continuum (QBICs) with sharp resonances and enhanced light-matter interactions to overcome these limitations. As a proof of concept, the device achieves label-free detection of a sulfur-containing amino acid cysteine, with an ultrahigh sensitivity of 492 GHz/RIU and an ultralow detection limit down to 0.00025 mg/mL. The synergy between QBIC-induced field confinement and meticulous structural optimization of the metasurface underpins this performance, marking a significant advance over conventional THz metasurface biosensing schemes. These results establish QBIC-based metasurfaces as a promising platform for ultrasensitive and high-precision biochemical and chemical sensing, with broad implications for medical diagnostics, food safety, and environmental monitoring.
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