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Measuring molecular frequencies in the 1–10 μm range at 11-digits accuracy

机译:以11位精度测量1–10μm范围内的分子频率

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摘要

High-resolution spectroscopy in the 1–10 μm region has never been fully tackled for the lack of widely-tunable and practical light sources. Indeed, all solutions proposed thus far suffer from at least one of three issues: they are feasible only in a narrow spectral range; the power available for spectroscopy is limited; the frequency accuracy is poor. Here, we present a setup for high-resolution spectroscopy, whose approach can be applied in the whole 1–10 μm range. It combines the power of quantum cascade lasers (QCLs) and the accuracy achievable by difference frequency generation using an orientation patterned GaP crystal. The frequency is measured against a primary frequency standard using the Italian metrological fibre link network. We demonstrate the performance of the setup by measuring a vibrational transition in a highly-excited metastable state of CO around 6 μm with 11 digits of precision.
机译:由于缺乏可广泛调谐和实用的光源,因此尚未完全解决1-10μm区域的高分辨率光谱学问题。实际上,迄今为止提出的所有解决方案都至少受到以下三个问题之一的困扰:它们仅在狭窄的光谱范围内可行;光谱学可用的功率有限;频率精度差。在这里,我们介绍一种用于高分辨率光谱的装置,其方法可在整个1–10μm范围内应用。它结合了量子级联激光器(QCL)的功率和使用定向图案化的GaP晶体通过产生差频产生的精度。该频率是使用意大利计量光纤链路网络根据主频率标准测量的。我们通过测量高激发的亚稳态CO在大约6μm处的CO的亚稳态下的振动跃迁(具有11位精度)来演示该设置的性能。

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