Semiclassical two-step model with quantum input: Quantum-classical approach to strong-field ionization

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OriginalspracheEnglisch
Aufsatznummer053411
FachzeitschriftPhysical Review A
Jahrgang100
Ausgabenummer5
PublikationsstatusVeröffentlicht - 18 Nov. 2019

Abstract

We present a mixed quantum-classical approach to strong-field ionization - a semiclassical two-step model with quantum input. In this model the initial conditions for classical trajectories that simulate an electron wave packet after ionization are determined by the exact quantum dynamics. As a result, the model allows to overcome deficiencies of standard semiclassical approaches in describing the ionization step. The comparison with the exact numerical solution of the time-dependent Schrödinger equation shows that for ionization of a one-dimensional atom the model yields quantitative agreement with the quantum result. This applies both to the width of the photoelectron momentum distribution and to the interference structure.

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Semiclassical two-step model with quantum input: Quantum-classical approach to strong-field ionization. / Shvetsov-Shilovskiy, Nikolai Ivanovich; Lein, Manfred.
in: Physical Review A, Jahrgang 100, Nr. 5, 053411, 18.11.2019.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Shvetsov-Shilovskiy NI, Lein M. Semiclassical two-step model with quantum input: Quantum-classical approach to strong-field ionization. Physical Review A. 2019 Nov 18;100(5):053411. doi: 10.1103/PhysRevA.100.053411
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abstract = "We present a mixed quantum-classical approach to strong-field ionization - a semiclassical two-step model with quantum input. In this model the initial conditions for classical trajectories that simulate an electron wave packet after ionization are determined by the exact quantum dynamics. As a result, the model allows to overcome deficiencies of standard semiclassical approaches in describing the ionization step. The comparison with the exact numerical solution of the time-dependent Schr{\"o}dinger equation shows that for ionization of a one-dimensional atom the model yields quantitative agreement with the quantum result. This applies both to the width of the photoelectron momentum distribution and to the interference structure.",
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