Cargando…

Nonadiabatic effects in electronic and nuclear dynamics

Due to their very nature, ultrafast phenomena are often accompanied by the occurrence of nonadiabatic effects. From a theoretical perspective, the treatment of nonadiabatic processes makes it necessary to go beyond the (quasi) static picture provided by the time-independent Schrödinger equation with...

Descripción completa

Detalles Bibliográficos
Autores principales: Bircher, Martin P., Liberatore, Elisa, Browning, Nicholas J., Brickel, Sebastian, Hofmann, Cornelia, Patoz, Aurélien, Unke, Oliver T., Zimmermann, Tomáš, Chergui, Majed, Hamm, Peter, Keller, Ursula, Meuwly, Markus, Woerner, Hans-Jakob, Vaníček, Jiří, Rothlisberger, Ursula
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Crystallographic Association 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5760266/
https://www.ncbi.nlm.nih.gov/pubmed/29376108
http://dx.doi.org/10.1063/1.4996816
_version_ 1783291351759060992
author Bircher, Martin P.
Liberatore, Elisa
Browning, Nicholas J.
Brickel, Sebastian
Hofmann, Cornelia
Patoz, Aurélien
Unke, Oliver T.
Zimmermann, Tomáš
Chergui, Majed
Hamm, Peter
Keller, Ursula
Meuwly, Markus
Woerner, Hans-Jakob
Vaníček, Jiří
Rothlisberger, Ursula
author_facet Bircher, Martin P.
Liberatore, Elisa
Browning, Nicholas J.
Brickel, Sebastian
Hofmann, Cornelia
Patoz, Aurélien
Unke, Oliver T.
Zimmermann, Tomáš
Chergui, Majed
Hamm, Peter
Keller, Ursula
Meuwly, Markus
Woerner, Hans-Jakob
Vaníček, Jiří
Rothlisberger, Ursula
author_sort Bircher, Martin P.
collection PubMed
description Due to their very nature, ultrafast phenomena are often accompanied by the occurrence of nonadiabatic effects. From a theoretical perspective, the treatment of nonadiabatic processes makes it necessary to go beyond the (quasi) static picture provided by the time-independent Schrödinger equation within the Born-Oppenheimer approximation and to find ways to tackle instead the full time-dependent electronic and nuclear quantum problem. In this review, we give an overview of different nonadiabatic processes that manifest themselves in electronic and nuclear dynamics ranging from the nonadiabatic phenomena taking place during tunnel ionization of atoms in strong laser fields to the radiationless relaxation through conical intersections and the nonadiabatic coupling of vibrational modes and discuss the computational approaches that have been developed to describe such phenomena. These methods range from the full solution of the combined nuclear-electronic quantum problem to a hierarchy of semiclassical approaches and even purely classical frameworks. The power of these simulation tools is illustrated by representative applications and the direct confrontation with experimental measurements performed in the National Centre of Competence for Molecular Ultrafast Science and Technology.
format Online
Article
Text
id pubmed-5760266
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher American Crystallographic Association
record_format MEDLINE/PubMed
spelling pubmed-57602662018-01-28 Nonadiabatic effects in electronic and nuclear dynamics Bircher, Martin P. Liberatore, Elisa Browning, Nicholas J. Brickel, Sebastian Hofmann, Cornelia Patoz, Aurélien Unke, Oliver T. Zimmermann, Tomáš Chergui, Majed Hamm, Peter Keller, Ursula Meuwly, Markus Woerner, Hans-Jakob Vaníček, Jiří Rothlisberger, Ursula Struct Dyn Swiss National Center of Competence in Research: Molecular Ultrafast Science and Technology Due to their very nature, ultrafast phenomena are often accompanied by the occurrence of nonadiabatic effects. From a theoretical perspective, the treatment of nonadiabatic processes makes it necessary to go beyond the (quasi) static picture provided by the time-independent Schrödinger equation within the Born-Oppenheimer approximation and to find ways to tackle instead the full time-dependent electronic and nuclear quantum problem. In this review, we give an overview of different nonadiabatic processes that manifest themselves in electronic and nuclear dynamics ranging from the nonadiabatic phenomena taking place during tunnel ionization of atoms in strong laser fields to the radiationless relaxation through conical intersections and the nonadiabatic coupling of vibrational modes and discuss the computational approaches that have been developed to describe such phenomena. These methods range from the full solution of the combined nuclear-electronic quantum problem to a hierarchy of semiclassical approaches and even purely classical frameworks. The power of these simulation tools is illustrated by representative applications and the direct confrontation with experimental measurements performed in the National Centre of Competence for Molecular Ultrafast Science and Technology. American Crystallographic Association 2018-01-09 /pmc/articles/PMC5760266/ /pubmed/29376108 http://dx.doi.org/10.1063/1.4996816 Text en © 2018 Author(s). 2329-7778/2018/4(6)/061510/34 All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Swiss National Center of Competence in Research: Molecular Ultrafast Science and Technology
Bircher, Martin P.
Liberatore, Elisa
Browning, Nicholas J.
Brickel, Sebastian
Hofmann, Cornelia
Patoz, Aurélien
Unke, Oliver T.
Zimmermann, Tomáš
Chergui, Majed
Hamm, Peter
Keller, Ursula
Meuwly, Markus
Woerner, Hans-Jakob
Vaníček, Jiří
Rothlisberger, Ursula
Nonadiabatic effects in electronic and nuclear dynamics
title Nonadiabatic effects in electronic and nuclear dynamics
title_full Nonadiabatic effects in electronic and nuclear dynamics
title_fullStr Nonadiabatic effects in electronic and nuclear dynamics
title_full_unstemmed Nonadiabatic effects in electronic and nuclear dynamics
title_short Nonadiabatic effects in electronic and nuclear dynamics
title_sort nonadiabatic effects in electronic and nuclear dynamics
topic Swiss National Center of Competence in Research: Molecular Ultrafast Science and Technology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5760266/
https://www.ncbi.nlm.nih.gov/pubmed/29376108
http://dx.doi.org/10.1063/1.4996816
work_keys_str_mv AT birchermartinp nonadiabaticeffectsinelectronicandnucleardynamics
AT liberatoreelisa nonadiabaticeffectsinelectronicandnucleardynamics
AT browningnicholasj nonadiabaticeffectsinelectronicandnucleardynamics
AT brickelsebastian nonadiabaticeffectsinelectronicandnucleardynamics
AT hofmanncornelia nonadiabaticeffectsinelectronicandnucleardynamics
AT patozaurelien nonadiabaticeffectsinelectronicandnucleardynamics
AT unkeolivert nonadiabaticeffectsinelectronicandnucleardynamics
AT zimmermanntomas nonadiabaticeffectsinelectronicandnucleardynamics
AT cherguimajed nonadiabaticeffectsinelectronicandnucleardynamics
AT hammpeter nonadiabaticeffectsinelectronicandnucleardynamics
AT kellerursula nonadiabaticeffectsinelectronicandnucleardynamics
AT meuwlymarkus nonadiabaticeffectsinelectronicandnucleardynamics
AT woernerhansjakob nonadiabaticeffectsinelectronicandnucleardynamics
AT vanicekjiri nonadiabaticeffectsinelectronicandnucleardynamics
AT rothlisbergerursula nonadiabaticeffectsinelectronicandnucleardynamics