CHAPTER 9: Attophotochemistry: Coherent Electronic Dynamics and Nuclear Motion

J. S. Ajay, K. G. Komarova, S. Van Den Wildenberg, F. Remacle, R. D. Levine

Research output: Chapter in Book/Report/Conference proceedingChapterpeer-review

7 Scopus citations

Abstract

We describe and discuss the theoretical methodology we use to analyze and predict novel chemical phenomena made possible by attosecond electronic excitation. We describe the dynamics by solving the time dependent Schrödinger equation with the laser pulse treated exactly as part of the Hamiltonian. We include the explicit onset of the nuclear motion following such an ultrafast excitation. The coupling to the nuclei is discussed when using either an adiabatic or a diabatic basis for the electronic dynamics. We begin by analyzing the chemical physics that can be realized by such an ultrafast excitation. Driving chemical reactions specifically towards new channels by selective attosecond excitation is explored as well as the physical parameters that can be used in such a control. Elucidating the role of other variables such as the mass is also discussed. The results are illustrated by recent applications primarily to the N2, LiH and HCN systems.

Original languageEnglish
Title of host publicationCold Chemistry
Subtitle of host publicationMolecular Scattering and Reactivity Near Absolute Zero
EditorsFranck Lepine, Marc J. J. Vrakking
PublisherRoyal Society of Chemistry
Pages308-347
Number of pages40
Edition13
DOIs
StatePublished - 2018

Publication series

NameRSC Theoretical and Computational Chemistry Series
Number13
Volume2018-January
ISSN (Print)2041-3181
ISSN (Electronic)2041-319X

Bibliographical note

Publisher Copyright:
© The Royal Society of Chemistry 2018.

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