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Widely-Tunable Quantum Cascade-Based Sources for the Development of Optical Gas Sensors

机译:用于光学气体传感器的开发的广泛调谐的量子级联源

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摘要

Spectroscopic techniques based on Distributed FeedBack (DFB) Quantum Cascade Lasers (QCL) provide good results for gas detection in the mid-infrared region in terms of sensibility and selectivity. The main limitation is the QCL relatively low tuning range (~10 cm−1) that prevents from monitoring complex species with broad absorption spectra in the infrared region or performing multi-gas sensing. To obtain a wider tuning range, the first solution presented in this paper consists of the use of a DFB QCL array. Tuning ranges from 1335 to 1387 cm−1 and from 2190 to 2220 cm−1 have been demonstrated. A more common technique that will be presented in a second part is to implement a Fabry–Perot QCL chip in an external-cavity (EC) system so that the laser could be tuned on its whole gain curve. The use of an EC system also allows to perform Intra-Cavity Laser Absorption Spectroscopy, where the gas sample is placed within the laser resonator. Moreover, a technique only using the QCL compliance voltage technique can be used to retrieve the spectrum of the gas inside the cavity, thus no detector outside the cavity is needed. Finally, a specific scheme using an EC coherent QCL array can be developed. All these widely-tunable Quantum Cascade-based sources can be used to demonstrate the development of optical gas sensors.
机译:基于分布式反馈(DFB)量子级联激光器(QCL)的光谱技术在敏感性和选择性方面为中红外区域的气体检测提供了良好的效果。主要限制是QCL相对较低的调谐范围(〜10cm-1),其防止在红外区域中具有宽吸收光谱的复杂物种或进行多气体感测。为了获得更广泛的调谐范围,本文提出的第一个解决方案包括使用DFB QCL阵列。调整范围从1335到1387cm-1和2190到2220 cm-1。将在第二部分中呈现的更常见的技术是在外腔(EC)系统中实施法布里 - 珀罗QCL芯片,使得激光可以在其整个增益曲线上调谐。 EC系统的使用还允许进行腔内激光吸收光谱,其中气体样品被放置在激光谐振器内。此外,仅使用QCL顺应电压技术的技术可用于检索腔内内的气体的光谱,因此不需要腔外的探测器。最后,可以开发使用EC相干QCL阵列的特定方案。所有这些广泛调谐的量子级联源极源可用于展示光学气体传感器的发展。

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