High-precision gas refractometer by comb-mode-resolved spectral interferometry

Abstract 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...

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Main Authors: Lijun Yang, Yan Li, Haoyun Wei
Format: Article
Language:English
Published: Nature Publishing Group 2018-11-01
Series:Scientific Reports
Subjects:
Online Access:https://doi.org/10.1038/s41598-018-34641-y
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spelling doaj-692470137d3041b1b03e414e131f6b7c2020-12-08T05:42:37ZengNature Publishing GroupScientific Reports2045-23222018-11-01811910.1038/s41598-018-34641-yHigh-precision gas refractometer by comb-mode-resolved spectral interferometryLijun Yang0Yan Li1Haoyun Wei2Key Lab of Precision Measurement Technology & Instrument, Department of Precision Instrument, Tsinghua UniversityKey Lab of Precision Measurement Technology & Instrument, Department of Precision Instrument, Tsinghua UniversityKey Lab of Precision Measurement Technology & Instrument, Department of Precision Instrument, Tsinghua UniversityAbstract 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 × 10−9 for air and a single measurement only takes 10 ms, which is applicable for gas refractivity monitoring and compensating in real time.https://doi.org/10.1038/s41598-018-34641-ySpectral InterferometryVirtually Imaged Phased Array (VIPA)Comb ModeVacuum CellInterferometric Phase Difference
collection DOAJ
language English
format Article
sources DOAJ
author Lijun Yang
Yan Li
Haoyun Wei
spellingShingle Lijun Yang
Yan Li
Haoyun Wei
High-precision gas refractometer by comb-mode-resolved spectral interferometry
Scientific Reports
Spectral Interferometry
Virtually Imaged Phased Array (VIPA)
Comb Mode
Vacuum Cell
Interferometric Phase Difference
author_facet Lijun Yang
Yan Li
Haoyun Wei
author_sort Lijun Yang
title High-precision gas refractometer by comb-mode-resolved spectral interferometry
title_short High-precision gas refractometer by comb-mode-resolved spectral interferometry
title_full High-precision gas refractometer by comb-mode-resolved spectral interferometry
title_fullStr High-precision gas refractometer by comb-mode-resolved spectral interferometry
title_full_unstemmed High-precision gas refractometer by comb-mode-resolved spectral interferometry
title_sort high-precision gas refractometer by comb-mode-resolved spectral interferometry
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2018-11-01
description Abstract 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 × 10−9 for air and a single measurement only takes 10 ms, which is applicable for gas refractivity monitoring and compensating in real time.
topic Spectral Interferometry
Virtually Imaged Phased Array (VIPA)
Comb Mode
Vacuum Cell
Interferometric Phase Difference
url https://doi.org/10.1038/s41598-018-34641-y
work_keys_str_mv AT lijunyang highprecisiongasrefractometerbycombmoderesolvedspectralinterferometry
AT yanli highprecisiongasrefractometerbycombmoderesolvedspectralinterferometry
AT haoyunwei highprecisiongasrefractometerbycombmoderesolvedspectralinterferometry
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