4.6 Article

Direct manipulation of atomic excitation with intense extreme-ultraviolet laser fields

Journal

PHYSICAL REVIEW A
Volume 105, Issue 4, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevA.105.043113

Keywords

-

Funding

  1. National Natural Science Foundation of China [U1932133, 11905089, 12027809]
  2. Natural Science Foundation of Gansu Province [20JR5RA222]
  3. Department of Education of Gansu Province [2021CXZX-015]
  4. Supercom-puting Center of Lanzhou University
  5. China Scholarship Council

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This theoretical study investigates the excitation and manipulation of a two-level system with ultrashort intense extreme-ultraviolet laser fields. The focus is on the dynamical phase excursion of the energy states during the interaction and the resulting spectral modifications. The analysis includes fitting absorption line shapes using the Fano profile, quantifying the asymmetry parameter and dipole phase offset, and employing nonperturbative analytical calculations to understand the dependence of the dipole phase shift on the external field. The validity of the formulas is confirmed by comparing their predictions with numerical results.
The coherent excitation and manipulation of a two-level system with ultrashort intense extreme-ultraviolet laser fields is investigated theoretically, based on numerically solving the time-dependent Schr??dinger equation. We are particularly interested in the dynamical phase excursion of the energy states over the course of the interaction and the resulting spectral modifications. Fitting the absorption line shapes with the Fano profile quantifies the asymmetry parameter and the corresponding dipole phase offset, capturing the phase difference of the state coefficients after the interaction. Nonperturbative analytical calculations using rectangular driving pulses are employed, yielding physical insights into the dependence of the dipole phase shift on the external field. The validity of the formulas is validated by comparing their predictions with numerical results, which proves to be robust against the variation of laser parameters. The present investigation of strong-field dressing effects complements recent attosecond transient absorption studies assuming weak excitation, and marks a ubiquitous phenomenon that should be generally considered for the interaction of matter with intense laser fields.

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