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Optics and Spectroscopy, 2021 Volume 129, Issue 1, Pages 16–21 (Mi os201)

This article is cited in 4 papers

Spectroscopy and physics of atoms and molecules

Nature of the fine structure of rotational levels of the ground X$^{2}\Sigma^{+}$-state of the radical CN

V. A. Terashkevich, E. A. Pazyuk

Lomonosov Moscow State University

Abstract: Based on non-empirical high-level quantum-chemical calculations of off-diagonal matrix elements of spin–orbital and electron-rotational coupling between the ground X$^{2}\Sigma^{+}$- and excited (1–4)$^{2}\Pi$-states, it has been established that the observed regular effect of $\gamma$-doubling of the rotational levels of the X$^{2}\Sigma^{+}$ state is mainly determined by intra-molecular interactions with distant states (2–4)$^{2}\Pi$. Within the nonadiabatic model of the effective radial Hamiltonian of the isolated electronic state, it was possible to construct the analytical potential of the X$^{2}\Sigma^{+}$ state and the corresponding function $\gamma(R)$, which reproduce the frequencies of rotational and vibrational–rotational transitions (for the lowest vibrational levels $\nu\le$ 3) of the CN molecule at the experimental (spectroscopic) level of accuracy.

Keywords: radical CN, non-adiabatic interactions, fine structure, $\gamma$-doubling, inter-atomic potential, non-empirical calculations.

Received: 04.08.2020
Revised: 27.09.2020
Accepted: 29.09.2020

DOI: 10.21883/OS.2021.01.50433.210-20


 English version:
Optics and Spectroscopy, 2021, 129:1, 12–17

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