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  4. High-order perturbation expansion of non-Hermitian Floquet theory for multiphoton and above-threshold ionization processes
 
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High-order perturbation expansion of non-Hermitian Floquet theory for multiphoton and above-threshold ionization processes

Journal
Physical Review A - Atomic, Molecular, and Optical Physics
Journal Volume
61
Journal Issue
1
Pages
11-
Date Issued
2000
Author(s)
Telnov, D.A.
SHIH-I CHU  
DOI
10.1103/PhysRevA.61.013408
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/441678
URL
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85035280627&doi=10.1103%2fPhysRevA.61.013408&partnerID=40&md5=69a189ce429d2eaf92a6a1cb0010a3e3
Abstract
A high-order perturbation theory is presented for efficient and accurate computation of multiphoton and above-threshold ionization cross sections of atoms and molecules in weak to medium strength laser fields. The procedure is based on a Raleigh-Schrödinger perturbative expansion of the time-independent non-Hermitian Floquet Hamiltonian. The reduced Green function and generalized pseudospectral discretization techniques are extended to facilitate the calculation of complex quasienergy resonance states without the need of diagonalizing the full Floquet Hamiltonian. Explicit expressions are presented for the determination of intensity-dependent total and partial rates and electron angular distributions. The theory is applied to a case study of multiphoton detachment of [Formula Presented] for a range of laser frequencies (corresponding to the absorption of a minimum of two photons) and laser intensities from [Formula Presented] to [Formula Presented] It is found that a 16th-order perturbative Floquet procedure provides an excellent description of the two-photon-dominant detachment processes for laser intensity up to [Formula Presented] The predicted electron angular distributions are in good agreement with recent experimental data. © 1999 The American Physical Society.
Type
journal article

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