Broadband-Enhanced Terahertz Metasurface Biosensor Enables Molecular Fingerprint Trace Detection via Single-Shot Acquisition

太赫兹辐射 指纹(计算) 材料科学 生物分子 光电子学 吸收(声学) 分析物 生物传感器 太赫兹光谱与技术 指纹识别 缩放比例 探测器 纳米传感器 波长 电介质 噪音(视频) 联轴节(管道) 纳米技术 功勋 跟踪(心理语言学) 光学 超材料 响应时间 分子结合
作者
Qiang Niu,Kai He,Rong Zhao,Yinong Xie,Ghulam Murtaza,Guling Zhang,Shaoqiu Xiao,Fang Zeng,Yuping Yang,Jinfeng Zhu
出处
期刊:ACS Photonics [American Chemical Society]
卷期号:12 (11): 5939-5947 被引量:7
标识
DOI:10.1021/acsphotonics.5c01303
摘要

Enhancing light–matter interactions to reveal the fingerprint properties of trace molecules is of great significance for terahertz (THz) absorption spectroscopy, which provides vital information about inter- and intramolecular vibrations. The construction of gradient narrow-resonance metasurfaces offers an effective solution to amplify the weak response caused by the significant mismatch between the THz wavelength and the molecular scale. Nevertheless, numerous tests and complex data processing pose considerable challenges to their practical implementation. Herein, we propose a broadband-enhanced THz metasurface biosensor based on the electromagnetically induced transparency effect that achieves an average electric field intensity enhancement of up to 77.61 across a 200 GHz bandwidth. This capability enables highly sensitive detection of molecular fingerprint information through single-shot acquisition. Furthermore, by employing a parameter scaling strategy, we achieve linear tuning of the resonance frequency for each module, thereby expanding the operating bandwidth. As a proof of concept, we demonstrate the coupling responses of two biomolecules using the proposed sensor, achieving both qualitative and quantitative detection based on response intensity and interaction frequency, with a detection limit of 1.76 μg/mm2. As far as we know, it also represents the first instance of detection of two THz fingerprint absorption peaks of the same analyte using a single resonant peak of a metasurface, enabled by single-shot acquisition. This advancement provides novel insights into label-free, high-sensitivity sensing and molecular identification, thereby significantly advancing the application of the THz technology in biosensing.
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