Freitag Stephan, Baer Matthias, Buntzoll Laura, Ramer Georg, Schwaighofer Andreas, Schmauss Bernhard, Lendl Bernhard
Institute of Chemical Technologies and Analytics, Technische Universität Wien, Getreidemarkt 9/164-UPA, 1060 Vienna, Austria.
Institute of Microwaves and Photonics, Friedrich-Alexander-University Erlangen-Nuremberg, Cauerstr. 9, 91058 Erlangen, Germany.
ACS Sens. 2021 Jan 22;6(1):35-42. doi: 10.1021/acssensors.0c01342. Epub 2020 Dec 29.
In this work, we introduce polarimetric balanced detection as a new attenuated total reflection (ATR) infrared (IR) sensing scheme, leveraging unequal effective thicknesses achieved with laser light of different polarizations. We combined a monolithic widely tunable Vernier quantum cascade laser (QCL-XT) and a multibounce ATR IR spectroscopy setup for analysis of liquids in a process analytical setting. Polarimetric balanced detection enables simultaneous recording of background and sample spectra, significantly reducing long-term drifts. The root-mean-square noise could be improved by a factor of 10 in a long-term experiment, compared to conventional absorbance measurements obtained via the single-ended optical channel. The sensing performance of the device was further evaluated by on-site measurements of ethanol in water, leading to an improved limit of detection (LOD) achieved with polarimetric balanced detection. Sequential injection analysis was employed for automated injection of samples into a custom-built ATR flow cell mounted above a zinc sulfide multibounce ATR element. The QCL-XT posed to be suitable for mid-IR-based sensing in liquids due to its wide tunability. Polarimetric balanced detection proved to enhance the robustness and long-term stability of the sensing device, along with improving the LOD by a factor of 5. This demonstrates the potential for new polarimetric QCL-based ATR mid-IR sensing schemes for in-field measurements or process monitoring usually prone to a multitude of interferences.
在这项工作中,我们引入了偏振平衡检测作为一种新的衰减全反射(ATR)红外(IR)传感方案,利用不同偏振态激光实现的不等有效厚度。我们将单片宽可调谐游标量子级联激光器(QCL-XT)与多反射 ATR 红外光谱装置相结合,用于过程分析环境中液体的分析。偏振平衡检测能够同时记录背景光谱和样品光谱,显著减少长期漂移。与通过单端光学通道获得的传统吸光度测量相比,在长期实验中,均方根噪声可提高 10 倍。通过对水中乙醇的现场测量进一步评估了该装置的传感性能,偏振平衡检测实现了更低的检测限(LOD)。采用顺序注射分析将样品自动注入安装在硫化锌多反射 ATR 元件上方的定制 ATR 流通池中。由于其宽可调谐性,QCL-XT 被证明适用于基于中红外的液体传感。偏振平衡检测不仅提高了传感装置的稳健性和长期稳定性,还将检测限提高了 5 倍。这证明了基于偏振 QCL 的新型 ATR 中红外传感方案在通常容易受到多种干扰的现场测量或过程监测中的潜力。