Estimation of transition rate of ionization of atoms for short range potential, based on assumptions of Keldysh approximation, shows that short-range potential does not affect the energy of the final state of ejected electron, when it leaves the atom. Coulomb potential is then treated as perturbatio
Transition rate dependence on the atom charge states, Z
✍ Scribed by V.M. Ristić; J.M. Stevanović
- Publisher
- John Wiley and Sons
- Year
- 2007
- Tongue
- English
- Weight
- 179 KB
- Volume
- 4
- Category
- Article
- ISSN
- 1612-2011
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✦ Synopsis
Here are shown two different transition rates, one obtained in the ADK-theory [1,2] and the other one for ADK result with turning point corrected with the Coulomb interaction – let us denote it cADK [1,3], in both cases the changing of charge states Z of atoms was performed. If plotted for the fields from 10^12^ W/cm^2^ to 10^17^ W/cm^2^ and for Z=1 to Z=10, the two variants give behavior which were not predicted before, Fig. 1 and Fig. 2, showing in the cADK case pick which is not shown in the ADK case. But from results shown on Fig. 3 and Fig. 4, although they are giving only the illustration of the real behavior of the transition rates, the actual situation can be predicted. On Fig. 4 one has results of cADK, and obtains the strongest tunnel effect at 10^13^ W/cm^2^, differing from the ADK case (Fig. 3), which gives this effect at 10^14^ W/cm^2^, in accordance with our earlier result [1].
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