Dipartimento di Fisica-Politecnico di Milano and IFN-CNR, Via Gaetano Previati 1/C, 23900 Lecco, Italy.
Institute of Physics, Faculty of Physics, Astronomy and Informatics, Nicolaus Copernicus University, Grudziadzka 5, 87-100 Torun, Poland.
J Chem Phys. 2017 Oct 7;147(13):134201. doi: 10.1063/1.4999056.
We propose a novel approach to cavity-ring-down-spectroscopy (CRDS) in which spectra acquired with a frequency-agile rapid-scanning (FARS) scheme, i.e., with a laser sideband stepped across the modes of a high-finesse cavity, are interleaved with one another by a sub-millisecond readjustment of the cavity length. This brings to time acquisitions below 20 s for few-GHz-wide spectra composed of a very high number of spectral points, typically 3200. Thanks to the signal-to-noise ratio easily in excess of 10 000, each FARS-CRDS spectrum is shown to be sufficient to determine the line-centre frequency of a Doppler broadened line with a precision of 2 parts over 10, thus very close to that of sub-Doppler regimes and in a few-seconds time scale. The referencing of the probe laser to a frequency comb provides absolute accuracy and long-term reproducibility to the spectrometer and makes it a powerful tool for precision spectroscopy and line-shape analysis. The experimental approach is discussed in detail together with experimental precision and accuracy tests on the (30 012) ← (00 001) P12e line of CO at ∼1.57 μm.
我们提出了一种新的方法来实现腔衰荡光谱(CRDS),即在高精细度腔的模式上扫过频率捷变快速扫描(FARS)方案获得的光谱,通过亚毫秒级的腔长调整将彼此交错。这使得对于由非常多的光谱点(通常为 3200 个)组成的几 GHz 宽光谱,采集时间低于 20 s。由于信噪比很容易超过 10 000,每个 FARS-CRDS 光谱都足以确定多普勒展宽线的线中心频率,其精度达到 2 部分中的 10,因此非常接近亚多普勒范围的精度,且在几秒钟的时间尺度内。将探测激光参考到频率梳上为光谱仪提供了绝对精度和长期可重复性,使其成为精密光谱学和线型分析的强大工具。详细讨论了实验方法,并对 CO 在约 1.57 μm 的(30 012)←(00 001)P12e 线进行了实验精度和准确性测试。