Yang Lijun, Li Yan, Wei Haoyun
Key Lab of Precision Measurement Technology & Instrument, Department of Precision Instrument, Tsinghua University, Beijing, 100084, China.
Sci Rep. 2018 Nov 6;8(1):16447. doi: 10.1038/s41598-018-34641-y.
High-accuracy knowledge of gas refractivity is typically crucial for optical interferometry, precise optical systems, and calculable pressure standard development. Here, we demonstrate an absolute gas refractometer by spectral interferometry and a high-resolution spectrometer. The spectral interferometry relies on a comb with fiber Fabry-Pérot filtering cavity, and a double-spaced vacuum cell. The spectrometer employs a virtually imaged phased array, diffraction grating and near-infrared camera to fully resolve the comb modes. Finally, by means of fast-Fourier-transform, the group refractivity can be derived from the spectrally resolved interferograms of the two beams propagating in the inside and outside of the vacuum cell. To confirm the feasibility and performance of the gas refractometer, the measurement of ambient air was conducted. The proposed scheme has a combined uncertainty of 1.3 × 10 for air and a single measurement only takes 10 ms, which is applicable for gas refractivity monitoring and compensating in real time.
对于光学干涉测量、精密光学系统以及可计算压力标准的发展而言,高精度的气体折射知识通常至关重要。在此,我们展示了一种通过光谱干涉测量法和高分辨率光谱仪实现的绝对气体折射仪。光谱干涉测量法依赖于带有光纤法布里 - 珀罗滤波腔的梳状光源以及双间隔真空室。该光谱仪采用虚拟成像相控阵、衍射光栅和近红外相机来完全分辨梳状模式。最后,借助快速傅里叶变换,可从在真空室内外传播的两束光的光谱分辨干涉图中得出群折射率。为了确认气体折射仪的可行性和性能,我们对环境空气进行了测量。所提出的方案对空气的合成不确定度为1.3×10 ,单次测量仅需10毫秒,适用于气体折射实时监测和补偿。