Calibration-free, high-precision, and robust terahertz ultrafast metasurfaces for monitoring gastric cancers

太赫兹辐射 校准 超短脉冲 光电子学 计算机科学 材料科学 光学 电子工程 物理 激光器 工程类 量子力学
作者
Jing Lou,Yanan Jiao,Ruisheng Yang,Yindong Huang,Xing Xu,Lei Zhang,Zhaofu Ma,Ying Yu,Wenyu Peng,Yifang Yuan,Yuan Zhong,Songyan Li,Yan Yang,Fuli Zhang,Jun Liang,Xiaohui Du,Chao Chang,Cheng‐Wei Qiu
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:119 (43): e2209218119-e2209218119 被引量:258
标识
DOI:10.1073/pnas.2209218119
摘要

Optical sensors, with great potential to convert invisible bioanalytical response into readable information, have been envisioned as a powerful platform for biological analysis and early diagnosis of diseases. However, the current extraction of sensing data is basically processed via a series of complicated and time-consuming calibrations between samples and reference, which inevitably introduce extra measurement errors and potentially annihilate small intrinsic responses. Here, we have proposed and experimentally demonstrated a calibration-free sensor for achieving high-precision biosensing detection, based on an optically controlled terahertz (THz) ultrafast metasurface. Photoexcitation of the silicon bridge enables the resonant frequency shifting from 1.385 to 0.825 THz and reaches the maximal phase variation up to 50° at 1.11 THz. The typical environmental measurement errors are completely eliminated in theory by normalizing the Fourier-transformed transmission spectra between ultrashort time delays of 37 ps, resulting in an extremely robust sensing device for monitoring the cancerous process of gastric cells. We believe that our calibration-free sensors with high precision and robust advantages can extend their implementation to study ultrafast biological dynamics and may inspire considerable innovations in the field of medical devices with nondestructive detection.
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