光子学
计算机科学
数码产品
纳米技术
信号处理
微流控
硅光子学
信号(编程语言)
CMOS芯片
利用
材料科学
电子工程
制作
水准点(测量)
硅
多路复用
半导体器件制造
布线(电子设计自动化)
晶体管
小型化
雷达
现场可编程门阵列
工程类
实验室晶片
分析物
吞吐量
芯片上的系统
拉曼散射
系统集成
平版印刷术
集成电路
作者
Zhanlei Han,Bo Wang,Huizi Li,He Li,Yanyan Fu,Chang Chen,Jiangong Cheng
标识
DOI:10.1002/lpor.202502818
摘要
ABSTRACT The growing demand for precise chemical gas detection across environmental, industrial, and healthcare applications has driven the development of miniaturized, cost‐effective optical sensors. Silicon photonics offers a transformative solution by enabling evanescent‐field‐based sensing within sub‐micron waveguides. This platform achieves micro/millimeter‐scale effective interaction lengths while miniaturizing the instrument, eliminating discrete optics, and lowering costs by orders of magnitude. Furthermore, monolithic integration with microfluidics and CMOS electronics facilitates real‐time analyte delivery, signal processing, and IoT connectivity, paving the way for distributed, intelligent gas‐sensing networks. In this Review, we systematically examine the design principles, fabrication strategies, and performance metrics of evanescent‐field on‐chip sensors. We categorize devices according to transduction modality‐refractive‐index, Raman scattering, infrared absorption, and fluorescence spectroscopy‐and benchmark their sensitivity, selectivity, and response time. The fundamental limits and practical challenges associated with each modality are dissected. Finally, we chart a roadmap for next‐generation on‐chip sensor platforms that exploit heterogeneous integration, on‐chip spectroscopy, and deep‐learning‐assisted signal processing to achieve large‐scale, high‐resolution monitoring.
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