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Development of multiple-wavelength oscillation in plasma of a pulse-periodic He+Ne+Sr laser T. M. Gorbunova, A. N. Soldatov, Y. P. Polunin, A. V. Lugovskoi

Contributor(s): Gorbunova, T. M | Polunin, Yuriy P | Lugovskoi, A. V | Soldatov, Anatoly N | Томский государственный университет Факультет инновационных технологий Научные подразделения ФИТMaterial type: ArticleArticleSubject(s): импульсно-периодические лазеры | колебания | плазмаGenre/Form: статьи в журналах Online resources: Click here to access online In: Optics and spectroscopy Vol. 118, № 3. P. 350-356Abstract: Mechanisms of multiple-wavelength oscillation at the lines of He I, Ne I, Sr I, and Sr II ions in the active medium of a high-voltage pulse-periodic laser based on a He + Ne + Sr mixture at a total pressure of ∼200 Torr and duration of the current pulse of about 150–300 ns are analyzed. An important role played by collisional thermal mixing of the laser levels of Ne I and Sr I in multiplets, as well as by collisions of the second kind between metastable and unexcited atoms, in populating and depopulating atomic levels is demonstrated. Absolute populations of the upper and lower levels of the laser transitions in Ne I are found. It is discovered that the degree of ionization nonequilibrium of plasma, both during and after the pulse of current, determines the mechanism of population inversion in laser transitions.
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Mechanisms of multiple-wavelength oscillation at the lines of He I, Ne I, Sr I, and Sr II ions in the active medium of a high-voltage pulse-periodic laser based on a He + Ne + Sr mixture at a total pressure of ∼200 Torr and duration of the current pulse of about 150–300 ns are analyzed. An important role played by collisional thermal mixing of the laser levels of Ne I and Sr I in multiplets, as well as by collisions of the second kind between metastable and unexcited atoms, in populating and depopulating atomic levels is demonstrated. Absolute populations of the upper and lower levels of the laser transitions in Ne I are found. It is discovered that the degree of ionization nonequilibrium of plasma, both during and after the pulse of current, determines the mechanism of population inversion in laser transitions.

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