The Coulomb-repulsion compensation of classical nonrelativistic hydrogen ions in the beam in crossover in the presence of a strong pulsed laser field with an intensity of about 10^15^W/cm^2^is theoretically studied. It is demonstrated that the average effective interaction force can fundamentally di
The hydrogen ions attraction effect in the pulsed field of two laser waves propagating in the opposite directions
β Scribed by S.S. Starodub; S.P. Roshchupkin
- Publisher
- John Wiley and Sons
- Year
- 2008
- Tongue
- English
- Weight
- 114 KB
- Volume
- 5
- Category
- Article
- ISSN
- 1612-2011
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β¦ Synopsis
Outside the framework of the dipole approximation (with an accuracy of about v/c) the effective interaction force between hydrogen ions, moving as paraxial beam in a pulsed field of two opposite laser waves directed parallel to beam, is theoretically studied. In the region of medial fields, when the oscillation velocity of ions in laser field is the same order as their relative transverse velocity, the attraction effect of the hydrogen ions is found out. The possibility of the magnitude control of an effective attractive force via variation of wave parameters is shown.
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