Russian Federation
UDC 66.096.3
The transmission of radiation was modeled to determine the sensitivity of IR spectroscopy for detecting the tritium isotopologue T218O in radioactive water vapor. The air-broadening and self-broadening coefficients were calculated for the T218O absorption lines. Spectral ranges most suitable for the detecting T218O in radioactive water vapor were determined.
radioactive isotopologues of water vapor, tritium, heavy water
1. Thomas D. W., Brigham R. M., Lapierre H. Field metabolic rates and body mass changes in common poorwills (Phalaenoptilus nuttallii: Caprimulgidae) // Écoscience. 1996. V.3 №1. P.70–74.
2. Green B., Dryden G., Dryden K. Field energetics of a large carnivorous lizard, Varanus rosenbergi // Oecologia. 1991. V.88. P. 547–551.
3. Robinson M.D. Summer field energetics of the Namib desert dune lizard Aporosaura anchietae (Lacertidae), and its relation to reproduction //Journal of Arid Environments. 1990. №18. P.207-215.
4. Kanesaka I., Tsuchida M., Kawai K., Takeuchi T. The IR spectrum of T218O // J. Mol. Spectrosc. 1984. V.104. №2. P.405-413.
5. Mihaylenko S.N., Babikov Yu.L., Golovko V.F. Informacionno-vychislitel'naya sistema "Spektroskopiya atmosfernyh gazov". Struktura i osnovnye funkcii // Optika atmosfery i okeana. 2005. T.18. №9. S. 765-776.
6. https://spectra.iao.ru/molecules
7. Voronin B.A., Lavrentieva N.N., Mishina T.P., Chesnokova T.Yu., Barber M.J., Tennyson J. Estimate of the J’J” dependence of water vapor line broadening parameters // J. Quant. Spectrosc. Radiat. Transfer. 2010. V.111. Iss. 15. P.2308–2314.
8. Rothman L.S., Jacquemart D., Barbe A., et al The HITRAN 2004 molecular spectroscopic database. // J. Quant. Spectrosc. Radiat. Transfer. 2005. V.96. Iss.2. P.139–204.
9. Gordon I.E., Rothman L.S., Hargreaves R.J. et al. The HITRAN2024 molecular spectroscopic database // J. Quant. Spectrosc. Radiat. Transfer. 2026. V.353. P.109807.



