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Quantitative analysis of gas phase molecular constituents using frequency-modulated rotational spectroscopy.

Publication ,  Journal Article
Lou, M; Swearer, DF; Gottheim, S; Phillips, DJ; Simmons, JG; Halas, NJ; Everitt, HO
Published in: The Review of scientific instruments
May 2019

Rotational spectroscopy has been used for decades for virtually unambiguous identification of gas phase molecular species, but it has rarely been used for the quantitative analysis of molecular concentrations. Challenges have included the nontrivial reconstruction of integrated line strengths from modulated spectra, the correlation of pressure-dependent line shape and strength with partial pressure, and the multiple standing wave interferences and modulation-induced line shape asymmetries that sensitively depend on source-chamber-detector alignment. Here, we introduce a quantitative analysis methodology that overcomes these challenges, reproducibly and accurately recovering gas molecule concentrations using a calibration procedure with a reference gas and a conversion based on calculated line strengths. The technique uses frequency-modulated rotational spectroscopy and recovers the integrated line strength from a Voigt line shape that spans the Doppler- and pressure-broadened regimes. Gas concentrations were accurately quantified to within the experimental error over more than three orders of magnitude, as confirmed by the cross calibration between CO and N2O and by the accurate recovery of the natural abundances of four N2O isotopologues. With this methodology, concentrations of hundreds of molecular species may be quantitatively measured down to the femtomolar regime using only a single calibration curve and the readily available libraries of calculated integrated line strengths, demonstrating the power of this technique for the quantitative gas-phase detection, identification, and quantification.

Published In

The Review of scientific instruments

DOI

EISSN

1089-7623

ISSN

0034-6748

Publication Date

May 2019

Volume

90

Issue

5

Start / End Page

053110

Related Subject Headings

  • Applied Physics
  • 51 Physical sciences
  • 40 Engineering
  • 34 Chemical sciences
  • 09 Engineering
  • 03 Chemical Sciences
  • 02 Physical Sciences
 

Citation

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Lou, M., Swearer, D. F., Gottheim, S., Phillips, D. J., Simmons, J. G., Halas, N. J., & Everitt, H. O. (2019). Quantitative analysis of gas phase molecular constituents using frequency-modulated rotational spectroscopy. The Review of Scientific Instruments, 90(5), 053110. https://doi.org/10.1063/1.5093912
Lou, Minghe, Dayne F. Swearer, Samuel Gottheim, Dane J. Phillips, Jay G. Simmons, Naomi J. Halas, and Henry O. Everitt. “Quantitative analysis of gas phase molecular constituents using frequency-modulated rotational spectroscopy.The Review of Scientific Instruments 90, no. 5 (May 2019): 053110. https://doi.org/10.1063/1.5093912.
Lou M, Swearer DF, Gottheim S, Phillips DJ, Simmons JG, Halas NJ, et al. Quantitative analysis of gas phase molecular constituents using frequency-modulated rotational spectroscopy. The Review of scientific instruments. 2019 May;90(5):053110.
Lou, Minghe, et al. “Quantitative analysis of gas phase molecular constituents using frequency-modulated rotational spectroscopy.The Review of Scientific Instruments, vol. 90, no. 5, May 2019, p. 053110. Epmc, doi:10.1063/1.5093912.
Lou M, Swearer DF, Gottheim S, Phillips DJ, Simmons JG, Halas NJ, Everitt HO. Quantitative analysis of gas phase molecular constituents using frequency-modulated rotational spectroscopy. The Review of scientific instruments. 2019 May;90(5):053110.

Published In

The Review of scientific instruments

DOI

EISSN

1089-7623

ISSN

0034-6748

Publication Date

May 2019

Volume

90

Issue

5

Start / End Page

053110

Related Subject Headings

  • Applied Physics
  • 51 Physical sciences
  • 40 Engineering
  • 34 Chemical sciences
  • 09 Engineering
  • 03 Chemical Sciences
  • 02 Physical Sciences