Analysis of 14N18O Spectrum in the 5200–5500 сm−1 Spectral Region

O. N. Sulakshina and Yu. G. Borkov, “Critical evaluation of measured line positions of 14N16O in X  2Π state,” J. Quant. Spetrosc. Radiat. Transfer 209, 171–179 (2018).

Article  ADS  Google Scholar 

O. N. Sulakshina and Yu. G. Borkov, “Global modelling of the experimental energy levels and observed line positions: Dunham coefficients for the ground state of 14N16O,” Mol. Phys. 116, 3519–3529 (2018).

Article  ADS  Google Scholar 

Yu. G. Borkov, O. N. Sulakshina, V. I. Serdyukov, and L. N. Sinitsa, “Spectroscopic parameters of the (3–0) vibrational band for the 15N16O molecule in the ground electronic state,” Atmos. Ocean. Opt. 36 (5), 427 (2023).

Article  Google Scholar 

B. D. Belan, “Ozone in troposphere. 6. Compounds of ozone cycles,” Opt. Atmos. Okeana 22 (4), 358–380 (2009).

Google Scholar 

B. D. Belan, Tropospheric Ozone (Publishing House of IAO SB RAS, Tomsk, 2010) [in Russian].

Google Scholar 

J. C. Gerard, “Satellite observations of the nitric oxide nightglow,” Geophys. Rev. Lett. 2, 179–182 (1975).

Article  ADS  Google Scholar 

J.-L. Bertaux, F. Leblanc, S. Perrier, E. Quemerais, O. Korablev, E. Dimarellis, A. Reberac, F. Forget, P. C. Simon, S. A. Stern, B. Sandel, and the SPICAM Team, “Nightglow in the upper atmosphere of Mars and implications for atmospheric transport,” Science 307, 566–569 (2005).

Article  ADS  Google Scholar 

A. G. Munoz, F. P. Mills, G. Piccioni, and P. Drossart, “From the cover: The near-infrared nitric oxide nightglow in the upper atmosphere of Venus,” Proc. Natl. Acad. Sci. U.S.A. 106, 985–988 (2009).

Article  ADS  Google Scholar 

V. L. Kuznetsova and A. G. Solov’eva, “Nitci oxide. Properties, role in biology, and mode of action,” Sovremennye Problemy Nauki Obrazovaniya, No. 4, 462 (2015).

Google Scholar 

R. J. Hargreaves, I. E. Gordon, L. S. Rothman, S. A. Tashkun, V. I. Perevalov, A. A. Lukashevskaya, S. N. Yurchenko, J. Tennyson, and H. S. P. Muller, “Spectroscopic line parameters of NO, NO2, and N2O for the HITEMP database,” J. Quant. Spectrosc. Radiat. Transfer 232, 35–53 (2019).

Article  ADS  Google Scholar 

I. E. Gordon, L. S. Rothman, R. J. Hargreaves, R. Hashemi, E. V. Karlovets, F. M. Skinner, E. K. Conway, C. Hill, R. V. Kochanov, Y. Tan, P. Wcislo, A. A. Finenko, K. Nelson, P. F. Bernath, M. Birk, V. Boudon, A. Campargue, K. V. Chance, A. Coustenis, B. J. Drouin, J. -M. Flaud, R. R. Gamache, J. T. Hodges, D. Jacquemart, E. J. Mlawer, A. V. Nikitin, V. I. Perevalov, M. Rotger, J. Tennyson, G. C. Toon, H. Tran, V. G. Tyuterev, E. M. M. Adkins, A. Baker, A. Barbe, E. Cane, A. G. Csaszar, A. Dudaryonok, O. Egorov, A. J. Fleisher, H. Fleurbaey, A. Foltynowicz, T. Furtenbacher, J. J. Harrison, J.-M. Hartmann, V.-M. Horneman, X. Huang, T. Karman, J. Karns, S. Kassi, I. Kleiner, V. Kofman, F. Kwabia-Tchana, N. N. Lavrentieva, T. J. Lee, D. A. Long, A. A. Lukashevskaya, O. M. Lyulin, V. Yu. Makhnev, W. Matt, S. T. Massie, M. Melosso, S. N. Mikhailenko, D. Mondelain, Z. D. Reed, M. Rey, C. Richard, R. Tobias, I. Sadiek, D. W. Schwenke, E. Starikova, K. Sung, F. Tamassia, S. A. Tashkun, Auwera J. Vander, I. A. Vasilenko, A. A. Vigasin, G. L. Villanueva, B. Vispoel, G. Wagner, A. Yachmenev, and S. N. Yurchenko, “The HITRAN2020 molecular spectroscopic database,” J. Quant. Spetrosc. Radiat. Transfer 277, 107949 (2022).

Article  Google Scholar 

R. M. Dale, J. W. C. Johns, A. R. W. McKeller, and M. Riggin, “High-resolution laser magnetic resonance and infrared-radiofrequency double-resonance spectroscopy of NO and its isotopes near 5.4 μm,” J. Mol. Spectrosc. 67, 440–458 (1977).

Article  ADS  Google Scholar 

C. Amiot, R. Basis, and G. Guelachvili, “Infrared study of the X 2Π \(\) = 0, 1, 2 levels of 14N16O. Preliminary results on the \(\) = 0, 1 levels of 14N17O, 14N18O, and 15N16O,” Can. J. Phys. 56, 251–265 (1978).

Article  ADS  Google Scholar 

R. Freedman and R. W. Nicholls, “Notes. Molecular constants for the \( ''\) = 0 (X  2Π) and \( '\) = 0, 1 (A 2Σ+) levels of the NO molecule and its isotopes,” J. Mol. Spectrosc. 83, 223–227 (1980).

Article  ADS  Google Scholar 

A. H. Saleck, K. M. T. Yamada, and G. Winnewisser, “Isotopic nitric oxide spectra and breakdown of the Born–Oppenheimer approximation,” Mol. Phys. 72, 1135–1148 (1991).

Article  ADS  Google Scholar 

E. Klish, S. P. Belov, R. Schnieder, G. Winnewisser, and E. Herbst, “Transitions between Hund’s coupling cases for the X 2Π state of NO,” Mol. Phys. 97, 65–79 (1999).

Article  ADS  Google Scholar 

H. S. P. Muller, K. Kobayashi, K. Takahashi, K. Tomaru, and F. Matsushima, “Terahertz spectroscopy of N18O and isotopic invariant fit of several nitric oxide isotopologs,” J. Mol. Spectros 310, 92–98 (2015).

Article  ADS  Google Scholar 

A. Wong, S. N. Yurchenko, P. Bernath, S. Holder, P. Muller, S. McConkey, and J. Tennyson, “ExoMol line list-XXI. Nitric Oxide (NO),” M. N. R. Astron. Soc. 470, 882–897 (2017).

Article  ADS  Google Scholar 

O. M. Lyulin, “Determination of spectral line parameters from several absorption spectra with the Multispectrum Fitting Computer Code,” Atmos. Ocean. Opt. 28 (6), 487–495 (2015).

Article  Google Scholar 

J. M. Brown, E. A. Colbourn, J. K. G. Watson, and F. D. Wayne, “En effective Hamiltonian for diatomic molecules. Ab initio calculations of parameters of HCl+,” J. Mol. Spectrosc. 74, 294–318 (1979).

Article  ADS  Google Scholar 

留言 (0)

沒有登入
gif