FOURIER-TRANSFORM INFRARED-EMISSION SPECTROSCOPY AND AB-INITIO CALCULATIONS ON RUN

Citation
Rs. Ram et al., FOURIER-TRANSFORM INFRARED-EMISSION SPECTROSCOPY AND AB-INITIO CALCULATIONS ON RUN, The Journal of chemical physics, 109(15), 1998, pp. 6329-6337
Citations number
67
Categorie Soggetti
Physics, Atomic, Molecular & Chemical
ISSN journal
00219606
Volume
109
Issue
15
Year of publication
1998
Pages
6329 - 6337
Database
ISI
SICI code
0021-9606(1998)109:15<6329:FISAAC>2.0.ZU;2-R
Abstract
The emission spectrum of RuN has been observed in the near infrared us ing a Fourier transform spectrometer. RuN molecules were excited in a hollow cathode lamp operated with neon gas and a trace of nitrogen. Tw o bands with 0-0 Q heads near 7354 and 8079 cm-l and a common lower st ate have been assigned as (2)Pi(1/2)-(2)Sigma(+) and (2)Pi(3/2)-(2)Sig ma(+) subbands, respectively, of a C (2)Pi-X (2)Sigma(+) transition. A rotational analysis of these bands has been performed and molecular c onstants have been extracted. The principal molecular constants for th e ground X (2)Sigma(+) State of the most abundant (RuN)-Ru-102 isotopo mer are: B-0 = 0.552 782 9(70) cm(-1) D-0=5.515(13) x 10(-7) cm(-1) ga mma(0) = -0.044 432(22) cm(-1) and r(0)=1.573 869(10) Angstrom. The ex cited C (2)Pi state has the following molecular constants: T-00=7714.3 42 60(53) cm(-1), A(0)=725.8064(11) cm(-1), B-0 = 0.516 843 4(80) cm(- 1), D-0 = 5.685(16) x 10(-7) cm(-1), p(0) = 5.467(36) x 10(-3) cm(-1) and r(0) = 1.627 670(13) Angstrom. Ab initio calculations have been ca rried out on RuN to ascertain the nature ofthe experimentally observed states and to predict the spectroscopic properties of the low-lying e lectronic states. Our electronic assignment is supported by these calc ulations and is also consistent with the observations for the isoelect ronic RhC molecule [Kaving and Scullman, J. Mel. Spectrosc. 32, 475-50 0 (1969)]. The valence electron configuration 1 sigma(2)2 sigma(2)1 pi (4)1 delta(4)3 sigma(1) is proposed for the X (2)Sigma(+) ground state of RuN and the configurations for the excited states have been discus sed. There is no previous experimental or theoretical work on RuN; (C) 1998 American Institute of Physics. [S0021-9606(98)01339-7].