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Kvantovaya Elektronika, 1993, Volume 20, Number 3, Pages 227–232 (Mi qe2973)  

This article is cited in 2 scientific papers (total in 2 papers)

Active media

Possibility of cw lasing on self-terminating transitions of metal atoms

V. F. Gavrikov, V. A. Shcheglov, I. I. Klimovskii

P. N. Lebedev Physical Institute, Russian Academy of Sciences, Moscow
Full-text PDF (189 kB) Citations (2)
Abstract: The possibility of achieving cw lasing on self-terminating transitions of metal atoms is examined theoretically for the case in which the lower working level is one of a group of metastable levels which are effectively mixed in collisions with atoms and molecules of a buffer (quenching) gas. The presence of the group of metastable levels has two consequences. First, it substantially raises the efficiency of the depopulation of the lower working level by heavy particles. Second, it creates conditions such that electrons cause a relaxation of this group of levels to the ground state. As a result, the quenching-gas pressure required for cw lasing is reduced to ~10 torr. The ranges of gas temperatures in which cw lasing can be achieved in this scheme are estimated. It is suggested that organometallic compounds be used as the active media in these lasers.
Received: 23.11.1992
English version:
Quantum Electronics, 1993, Volume 23, Issue 3, Pages 193–197
DOI: https://doi.org/10.1070/QE1993v023n03ABEH002973
Bibliographic databases:
Document Type: Article
UDC: 621.373.826.038.823
PACS: 42.60.Pk, 42.55.Lt, 42.60.Jf
Language: Russian


Citation: V. F. Gavrikov, V. A. Shcheglov, I. I. Klimovskii, “Possibility of cw lasing on self-terminating transitions of metal atoms”, Kvantovaya Elektronika, 20:3 (1993), 227–232 [Quantum Electron., 23:3 (1993), 193–197]
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  • https://www.mathnet.ru/eng/qe/v20/i3/p227
  • This publication is cited in the following 2 articles:
    Citing articles in Google Scholar: Russian citations, English citations
    Related articles in Google Scholar: Russian articles, English articles
    Квантовая электроника Quantum Electronics
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