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Pis'ma v Zh. Èksper. Teoret. Fiz., 2009, Volume 89, Issue 11, Pages 641–648 (Mi jetpl439)  

This article is cited in 10 scientific papers (total in 10 papers)

ATOMS, SPECTRA, RADIATIONS

Ionization self-compression of intense femtosecond pulses propagating through gas-filled dielectric capillaries

S. A. Skobeleva, D. I. Kulagina, A. N. Stepanova, A. V. Kima, A. M. Sergeeva, N. E. Andreevb

a Institute of Applied Physics, Russian Academy of Sciences
b Scientific Association for High Temperatures

Abstract: A mechanism of the ionization-induced self-compression of femtosecond laser pulses propagating in a gas-filled hollow dielectric capillary has been investigated both experimentally and theoretically. In particular, the double self-compression of a laser pulse from 76 to 40 fs has been experimentally demonstrated. A theoretical model that explains the mechanism of such a self-compression and provides a good agreement with the experimental data has been developed. The model also predicts that a laser pulse shorter than 10 fs can be generated in the optimal regime with an energy efficiency exceeding the efficiency of self-compression on a filament widely discussed at present.

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English version:
Journal of Experimental and Theoretical Physics Letters, 2009, 89:11, 540–546

Bibliographic databases:

PACS: 42.65.-k, 42.65.Re, 52.38.Hb
Received: 16.03.2009
Revised: 20.04.2009

Citation: S. A. Skobelev, D. I. Kulagin, A. N. Stepanov, A. V. Kim, A. M. Sergeev, N. E. Andreev, “Ionization self-compression of intense femtosecond pulses propagating through gas-filled dielectric capillaries”, Pis'ma v Zh. Èksper. Teoret. Fiz., 89:11 (2009), 641–648; JETP Letters, 89:11 (2009), 540–546

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    Citing articles on Google Scholar: Russian citations, English citations
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    This publication is cited in the following articles:
    1. Wojda F., Cassou K., Genoud G., Burza M., Glinec Y., Lundh O., Persson A., Vieux G., Brunetti E., Shanks R.P., Jaroszynski D., Andreev N.E., Wahlstrom C.-G., Cros B., Physical Review E, 80:6, Part 2 (2009), 066403  crossref  adsnasa  isi  elib  scopus
    2. Andreev N.E., Cassou K., Wojda F., Genoud G., Burza M., Lundh O., Persson A., Cros B., Fortov V.E., Wahlstrom C.-G., New Journal of Physics, 12 (2010), 045024  crossref  adsnasa  isi  scopus
    3. Shaynurova K.G., Bakhramov S.A., Kokhkharov A.M., Makhmanov U.K., Zakhidov E.A., Journal of Applied Spectroscopy, 78:6 (2012), 802–810  crossref  adsnasa  isi  scopus
    4. Balakin A.A., Litvak A.G., Mironov V.A., Skobelev S.A., EPL, 100:3 (2012), 34002  crossref  mathscinet  adsnasa  isi  elib  scopus
    5. Quantum Electron., 42:12 (2012), 1097–1099  mathnet  crossref  adsnasa  isi  elib
    6. Balakin A.A., Litvak A.G., Mironov V.A., Skobelev S.A., Phys. Rev. A, 88:2 (2013), 023836  crossref  mathscinet  adsnasa  isi  elib  scopus
    7. Quantum Electron., 43:3 (2013), 190–200  mathnet  crossref  adsnasa  isi  elib
    8. Balakin A.A., Litvak A.G., Mironov V.A., Skobelev S.A., J. Exp. Theor. Phys., 118:4 (2014), 512–520  crossref  adsnasa  isi  elib  scopus
    9. Quantum Electron., 45:5 (2015), 415–420  mathnet  crossref  isi  elib  elib
    10. Goh S.J., Tao Y., van der Slot P.J.M., Bastiaens H.J.M., Herek J., Biedron S.G., Danailov M.B., Milton S.V., Boller K.-J., Opt. Express, 23:19 (2015), 24888–24902  crossref  adsnasa  isi  elib  scopus
  •       Pis'ma v Zhurnal ksperimental'noi i Teoreticheskoi Fiziki
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