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Hydrogen atoms in circularly polarized microwave fields: Near-integrability and ionization
Author(s) -
M. J. Raković,
ShihI Chu
Publication year - 1995
Publication title -
physical review a
Language(s) - English
Resource type - Journals
eISSN - 1094-1622
pISSN - 1050-2947
DOI - 10.1103/physreva.52.1358
Subject(s) - physics , hydrogen atom , ionization , atomic physics , hamiltonian (control theory) , rydberg formula , quantum mechanics , integrable system , mathematical physics , ion , mathematical optimization , mathematics , group (periodic table)
We have recently found that ihe hydrogen atom in a circularly polarized (CP) microwave field possesses an approximate dynamical symmetry and its bounded motion can be well described by a three-dimensional integrable (but nonseparable) Hamiltonian function with a velocity-dependent potential [Rakovic and Chu, Phys. Rev. A 50, 5077 (1994)]. This finding provides a theoretical foundation for the understanding of the origin of the regularity of Rydberg atom dynamics in CP fields. We describe here the phase space topology of the three-dimensional integrable system relevant to the microwave ionization of the hydrogen atoms in CP fields. Using the integrable system as an approximation to the real system and with the use of the two additional integrals of motion, we are able to trace the deformation of the tori up to the point of bifurcation (ionization). From this, we have determined the classical ionization-field threshold law f„,=1/cno, where no is the principal quantum number of the initial state of the hydrogen atom and c is almost a constant ( =6 a.u. ). These results are in good accord with the existing experimental observations.

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