4.2 Article

Dynamic-Stark-effect-induced coherent mixture of virtual paths in laser-dressed helium: energetic electron impact excitation

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/1361-6455/aa6d1c

Keywords

resonant excitation process; laser-assisted electron-atom collision; dynamic Stark effect

Funding

  1. University of Bergen under the Strategic Programme for International Research and Education (SPIRE)
  2. French CNRS
  3. Agence Nationale de la Recherche
  4. Investissements d'avenir [ANR-11-IDEX-0004-02]

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We theoretically investigate quantum virtual path interference caused by the dynamic Stark effect in bound-bound electronic transitions. The effect is studied in an intermediate resonant region and in connection with the energetic electron impact excitation of a helium atom embedded in a weak low-frequency laser field. The process under investigation is dealt with via a Born-Floquet approach. Numerical calculations show a resonant feature in laser-assisted cross sections. The latter is found to be sensitive to the intensity of the laser field. dressing. We show that this feature is a signature of quantum beats which result from the coherent mixture of different quantum virtual pathways, and that excitation may follow in order to end up with a common final channel. This mixture arises from the dynamic Stark effect, which produces a set of avoided crossings in laser-dressed states. The effect allows one to coherently control quantum virtual path interference by varying the intensity of the laser field dressing. Our findings suggest that the combination of an energetic electron and a weak laser field is a useful tool for the coherent control of nonadiabatic transitions in an intermediate resonant region.

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