DocumentCode
82084
Title
A Review on Ab Initio Approaches for Multielectron Dynamics
Author
Ishikawa, Kenichi L. ; Sato, Takeshi
Author_Institution
Dept. of Nucl. Eng. & Manage. & the Photon Sci. Center, Univ. of Tokyo, Tokyo, Japan
Volume
21
Issue
5
fYear
2015
fDate
Sept.-Oct. 2015
Firstpage
1
Lastpage
16
Abstract
In parallel with the evolution of femtosecond and attosecond laser as well as free-electron laser technology, a variety of theoretical methods have been developed to describe the behavior of atoms, molecules, clusters, and solids under the action of those laser pulses. Here, we review major ab initio wave-function-based numerical approaches to simulate multielectron dynamics in atoms and molecules driven by intense long-wavelength and/or ultrashort short-wavelength laser pulses. Direct solution of the time-dependent Schrödinger equation, though its applicability is limited to He, H2, and Li, can provide an exact description and has been greatly contributing to the understanding of dynamical electron-electron correlation. Multiconfiguration self-consistent-field (MCSCF) approach offers a flexible framework from which a variety of methods can be derived to treat both atoms and molecules, with possibility to systematically control the accuracy. The equations of motion of configuration interaction coefficients and molecular orbitals for general MCSCF ansatz have recently been derived. Time-dependent extension of the R-matrix theory, originally developed for electron-atom collision, can realistically and accurately describe laser-driven complex multielectron atoms.
Keywords
SCF calculations; Schrodinger equation; ab initio calculations; atom-electron collisions; atom-photon collisions; helium; high-speed optical techniques; hydrogen; lithium; molecule-photon collisions; reviews; wave functions; H2; He; Li; R-matrix theory; ab initio wave-function-based numerical approach; attosecond laser; configuration interaction coefficients; dynamical electron-electron correlation; electron-atom collision; equations-of-motion; femtosecond laser; free-electron laser technology; intense long-wavelength laser pulses; laser-driven complex multielectron atoms; molecular orbitals; multiconfiguration self-consistent-field approach; multielectron dynamics; review; time-dependent Schrodinger equation; ultrashort short-wavelength laser pulses; Approximation methods; Free electron lasers; Ionization; Mathematical model; Sociology; Statistics; Wave functions; Ab initio methods; attosecond science; multielectron dynamics;
fLanguage
English
Journal_Title
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
1077-260X
Type
jour
DOI
10.1109/JSTQE.2015.2438827
Filename
7115070
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