Institute of Analytical and Bioanalytical Chemistry, 9189Ulm University, Ulm, Germany.
199772Hahn-Schickard, Ulm, Germany.
Appl Spectrosc. 2022 Jan;76(1):132-140. doi: 10.1177/00037028211064331. Epub 2021 Dec 10.
An innovative mid-infrared spectroscopic sensor system based on quantum cascade lasers has been developed. The system combines the versatility of substrate-integrated hollow waveguides (IHWGs) with the robustness of attenuated total reflection (ATR) crystals employed as internal reflection waveguides for evanescent field sensing. IHWGs are highly reflective metal structures that propagate infrared (IR) radiation and were used as light pipes for coupling radiation into the ATR waveguide. The combined IHWG-ATR device has been designed such that the utmost stability and robustness of the optical alignment were ensured. This novel assembly enables evanescent field absorption measurements at yet unprecedently harsh conditions, that is, high pressure and temperature. Combining these advantages, this innovative sensor assembly is perfectly suited for taking ATR spectroscopy into the field where the robustness of the assembly and optical alignment is essential.
已经开发出一种基于量子级联激光器的创新中红外光谱传感器系统。该系统将基片集成空芯波导(IHWG)的多功能性与衰减全反射(ATR)晶体的坚固性相结合,ATR 晶体用作用于倏逝场感测的内部反射波导。IHWG 是高度反射的金属结构,可传播红外(IR)辐射,并用作将辐射耦合到 ATR 波导中的光管。组合的 IHWG-ATR 器件的设计确保了光学对准的最大稳定性和坚固性。这种新颖的组件可在前所未有的苛刻条件下(即高压和高温)进行倏逝场吸收测量。结合这些优势,这种创新的传感器组件非常适合将 ATR 光谱技术应用于对组件和光学对准的坚固性至关重要的领域。