Mittal Vinita, Mashanovich Goran Z, Wilkinson James S
Zepler Institute for Photonics and Nanoelectronics, University of Southampton, Southampton, SO17 1BJ, United Kingdom.
School of Electrical Engineering, University of Belgrade, 11120 Belgrade, Serbia.
Anal Chem. 2020 Aug 18;92(16):10891-10901. doi: 10.1021/acs.analchem.0c01296. Epub 2020 Jul 28.
Miniaturized spectrometers offering low cost, low reagent consumption, high throughput, sensitivity and automation are the future of sensing and have significant applications in environmental monitoring, food safety, biotechnology, pharmaceuticals, and healthcare. Midinfrared (MIR) spectroscopy employing complementary metal oxide semiconductor (CMOS) compatible thin film waveguides and microfluidics shows great promise toward highly integrated and robust detection tools and liquid handling. This perspective provides an overview of the emergence of thin film optical waveguides used for evanescent field sensing of liquid chemical and biological samples for MIR absorption spectroscopy. The state of the art of new material and waveguide systems used for spectroscopic measurements in the MIR is presented. An outlook on the advantages and future of waveguide-based MIR spectroscopy for application in clinical settings for point-of-care biochemical analysis is discussed.
提供低成本、低试剂消耗、高通量、高灵敏度和自动化的小型光谱仪是传感技术的未来,在环境监测、食品安全、生物技术、制药和医疗保健等领域具有重要应用。采用互补金属氧化物半导体(CMOS)兼容薄膜波导和微流体技术的中红外(MIR)光谱,对于高度集成且坚固耐用的检测工具和液体处理显示出巨大潜力。本视角概述了用于MIR吸收光谱的液体化学和生物样品倏逝场传感的薄膜光波导的出现。介绍了用于MIR光谱测量的新材料和波导系统的最新技术。讨论了基于波导的MIR光谱在临床即时生化分析应用中的优势和未来展望。