太赫兹辐射
光学
干涉测量
材料科学
等离子体子
融合
叠加原理
表面等离子体子
光电子学
领域(数学)
光子学
严格耦合波分析
干扰(通信)
光路
图像分辨率
太赫兹光谱与技术
物理
稳健性(进化)
传感器融合
光场
表面等离子体激元
光学传感
光路长度
表面波
天文干涉仪
光刻
极化(电化学)
近场和远场
作者
Chengwei Song,Y. F. Wang,Yunyun Ji,Peng Shen,Shiqiang Zhao,Liang Ma,Xianghui Wang,Shengjiang Chang,Fei Fan
出处
期刊:ACS Photonics
[American Chemical Society]
日期:2026-02-09
卷期号:13 (4): 1207-1216
被引量:1
标识
DOI:10.1021/acsphotonics.5c03087
摘要
Terahertz trace sensing is inherently constrained by weak light-matter interactions. To address this fundamental bottleneck, we propose a novel sensing paradigm based on surface plasmonic (SP) field interference, transitioning from conventional free-space spectroscopic sensing to on-chip surface optical field sensing. Leveraging the extraordinary confinement and focusing capabilities of SP fields, the localized light intensity is substantially enhanced, thereby enhancing the efficiency of light-matter interactions. More importantly, by employing orthogonal slit antenna pairs as coherent surface wavelet sources and a three-stage coherent superposition mechanism, two sets of focused surface waves construct an interferometric field with precisely tunable optical path differences. Ultrasensitive detection is realized through the analysis of focal interference spectra. Experimental validation based on the hydrolysis of acetylcholinesterase demonstrates that the sensing platform attains a detection limit (LOD) as low as 3.125 μg/mL. Furthermore, by fusing 2D surface spectral data with machine-learning algorithms, accurate prediction of enzyme concentrations in the range of 3.125–50 μg/mL is successfully achieved. This work establishes an on-chip precision interferometric sensing technique integrating photonic integration technology and data fusion, representing a breakthrough advancement in the on-chip integration level, detection accuracy, and operational robustness of terahertz sensing systems.
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