Classical-quantum correspondence in atomic ionization by midinfrared pulses: Multiple peak and interference structures

Atomic ionization by strong and ultrashort laser pulses with frequencies in the midinfrared spectral region have revealed novel features such as the low-energy structures. We have performed fully three-dimensional quantum dynamical as well as classical trajectory Monte Carlo simulations for pulses w...

Descripción completa

Guardado en:
Detalles Bibliográficos
Autor principal: Arbó, Diego Gabriel
Publicado: 2013
Materias:
Acceso en línea:https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_10502947_v87_n1_p_Lemell
http://hdl.handle.net/20.500.12110/paper_10502947_v87_n1_p_Lemell
Aporte de:
id paper:paper_10502947_v87_n1_p_Lemell
record_format dspace
spelling paper:paper_10502947_v87_n1_p_Lemell2023-06-08T16:02:43Z Classical-quantum correspondence in atomic ionization by midinfrared pulses: Multiple peak and interference structures Arbó, Diego Gabriel Angular momentum distribution Atomic ionization Carrier-envelope phase Classical trajectory monte carlo Classical-quantum correspondence Differential energy Distorted waves Interference structures Ionization dynamics Long wavelength Low energy structures Mid-infrared pulse Mid-infrared spectral regions Multiple-peak Pulse durations Quantum-classical correspondence Rich structure Monte Carlo methods Ultrashort pulses Ionization Atomic ionization by strong and ultrashort laser pulses with frequencies in the midinfrared spectral region have revealed novel features such as the low-energy structures. We have performed fully three-dimensional quantum dynamical as well as classical trajectory Monte Carlo simulations for pulses with wavelengths from λ=2000 to 6000 nm. Furthermore, we apply distorted-wave quantum approximations. This allows to explore the quantum-classical correspondence as well as the (non) perturbative character of the ionization dynamics driven by long-wavelength pulses. We observe surprisingly rich structures in the differential energy and angular momentum distribution which sensitively depend on λ, the pulse duration τp, and the carrier-envelope phase PCEP. © 2013 American Physical Society. Fil:Arbó, D.G. Universidad de Buenos Aires. Facultad de Ciencias Exactas y Naturales; Argentina. 2013 https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_10502947_v87_n1_p_Lemell http://hdl.handle.net/20.500.12110/paper_10502947_v87_n1_p_Lemell
institution Universidad de Buenos Aires
institution_str I-28
repository_str R-134
collection Biblioteca Digital - Facultad de Ciencias Exactas y Naturales (UBA)
topic Angular momentum distribution
Atomic ionization
Carrier-envelope phase
Classical trajectory monte carlo
Classical-quantum correspondence
Differential energy
Distorted waves
Interference structures
Ionization dynamics
Long wavelength
Low energy structures
Mid-infrared pulse
Mid-infrared spectral regions
Multiple-peak
Pulse durations
Quantum-classical correspondence
Rich structure
Monte Carlo methods
Ultrashort pulses
Ionization
spellingShingle Angular momentum distribution
Atomic ionization
Carrier-envelope phase
Classical trajectory monte carlo
Classical-quantum correspondence
Differential energy
Distorted waves
Interference structures
Ionization dynamics
Long wavelength
Low energy structures
Mid-infrared pulse
Mid-infrared spectral regions
Multiple-peak
Pulse durations
Quantum-classical correspondence
Rich structure
Monte Carlo methods
Ultrashort pulses
Ionization
Arbó, Diego Gabriel
Classical-quantum correspondence in atomic ionization by midinfrared pulses: Multiple peak and interference structures
topic_facet Angular momentum distribution
Atomic ionization
Carrier-envelope phase
Classical trajectory monte carlo
Classical-quantum correspondence
Differential energy
Distorted waves
Interference structures
Ionization dynamics
Long wavelength
Low energy structures
Mid-infrared pulse
Mid-infrared spectral regions
Multiple-peak
Pulse durations
Quantum-classical correspondence
Rich structure
Monte Carlo methods
Ultrashort pulses
Ionization
description Atomic ionization by strong and ultrashort laser pulses with frequencies in the midinfrared spectral region have revealed novel features such as the low-energy structures. We have performed fully three-dimensional quantum dynamical as well as classical trajectory Monte Carlo simulations for pulses with wavelengths from λ=2000 to 6000 nm. Furthermore, we apply distorted-wave quantum approximations. This allows to explore the quantum-classical correspondence as well as the (non) perturbative character of the ionization dynamics driven by long-wavelength pulses. We observe surprisingly rich structures in the differential energy and angular momentum distribution which sensitively depend on λ, the pulse duration τp, and the carrier-envelope phase PCEP. © 2013 American Physical Society.
author Arbó, Diego Gabriel
author_facet Arbó, Diego Gabriel
author_sort Arbó, Diego Gabriel
title Classical-quantum correspondence in atomic ionization by midinfrared pulses: Multiple peak and interference structures
title_short Classical-quantum correspondence in atomic ionization by midinfrared pulses: Multiple peak and interference structures
title_full Classical-quantum correspondence in atomic ionization by midinfrared pulses: Multiple peak and interference structures
title_fullStr Classical-quantum correspondence in atomic ionization by midinfrared pulses: Multiple peak and interference structures
title_full_unstemmed Classical-quantum correspondence in atomic ionization by midinfrared pulses: Multiple peak and interference structures
title_sort classical-quantum correspondence in atomic ionization by midinfrared pulses: multiple peak and interference structures
publishDate 2013
url https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_10502947_v87_n1_p_Lemell
http://hdl.handle.net/20.500.12110/paper_10502947_v87_n1_p_Lemell
work_keys_str_mv AT arbodiegogabriel classicalquantumcorrespondenceinatomicionizationbymidinfraredpulsesmultiplepeakandinterferencestructures
_version_ 1768541715653722112