Institute of Analytical and Bioanalytical Chemistry (IABC), University of Ulm , Albert-Einstein-Allee 11, 89081 Ulm, Germany.
Anal Chem. 2013 Dec 3;85(23):11205-10. doi: 10.1021/ac402391m. Epub 2013 Oct 18.
A new generation of hollow waveguide (HWG) gas cells of unprecedented compact dimensions facilitating low sample volumes suitable for broad- and narrow-band mid-infrared (MIR; 2.5-20 μm) sensing applications is reported: the substrate-integrated hollow waveguide (iHWG). iHWGs are layered structures providing light guiding channels integrated into a solid-state substrate material, which are competitive if not superior in performance to conventional leaky-mode fiber optic silica HWGs having similar optical pathlengths. In particular, the provided flexibility in device and optical design and the wide variety of manufacturing strategies, substrate materials, access to the optical channel, and optical coating options highlight the advantages of iHWGs in terms of robustness, compactness, and cost-effectiveness. Finally, the unmatched modularity of this novel waveguide approach facilitates tailoring iHWGs to almost any kind of gas sensor technology providing adaptability to the specific demands of a wide range of sensing scenarios. Device fabrication is demonstrated for the example of a yin-yang-shaped gold-coated iHWG fabricated within an aluminum substrate with a footprint of only 75 mm × 50 mm × 12 mm (L × W × H), yet providing a nominal optical absorption path length of more than 22 cm. The analytical utility of this device for advanced MIR gas sensing applications is demonstrated for the gaseous constituents butane, carbon dioxide, cyclopropane, isobutylene, and methane.
一种新一代的具有空前紧凑尺寸的空心波导 (HWG) 气体池,能够容纳小体积的样品,适用于宽谱和窄带中红外 (MIR; 2.5-20 μm) 传感应用,即:基板集成空心波导 (iHWG)。iHWG 是分层结构,提供集成到固态基板材料中的导光通道,如果与具有相似光程的传统漏波光纤硅 HWG 相比,其性能具有竞争力,甚至更优。特别是,在器件和光学设计方面提供的灵活性,以及广泛的制造策略、基板材料、对光学通道的访问和光学涂层选择,突出了 iHWG 在坚固性、紧凑性和成本效益方面的优势。最后,这种新颖的波导方法无与伦比的模块化,使得 iHWG 几乎可以针对任何类型的气体传感器技术进行定制,从而适应各种传感场景的特定需求。以一个位于仅 75mm×50mm×12mm(L×W×H) footprint 的铝基板内的阴阳形镀金 iHWG 为例,展示了器件制造,其标称光学吸收路径长度超过 22cm。该器件在先进的 MIR 气体传感应用中的分析效用已针对丁烷、二氧化碳、环丙烷、异丁烯和甲烷等气态成分进行了验证。