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First-Principles Simulations of X-ray Transient Absorption for Probing Attosecond Electron Dynamics

[Image: see text] X-ray transient absorption spectroscopy (XTAS) is a promising technique for measuring electron dynamics in molecules and solids with attosecond time resolutions. In XTAS, the elemental specificity and spatial locality of core-to-valence X-ray absorption is exploited to relate modul...

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Autores principales: Chen, Min, Lopata, Kenneth
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7467644/
https://www.ncbi.nlm.nih.gov/pubmed/32470295
http://dx.doi.org/10.1021/acs.jctc.0c00122
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author Chen, Min
Lopata, Kenneth
author_facet Chen, Min
Lopata, Kenneth
author_sort Chen, Min
collection PubMed
description [Image: see text] X-ray transient absorption spectroscopy (XTAS) is a promising technique for measuring electron dynamics in molecules and solids with attosecond time resolutions. In XTAS, the elemental specificity and spatial locality of core-to-valence X-ray absorption is exploited to relate modulations in the time-resolved absorption spectra to local electron density variations around particular atoms. However, interpreting these absorption modulations and frequency shifts as a function of the time delay in terms of dynamics can be challenging. In this paper, we present a first-principles study of attosecond XTAS in a selection of simple molecules based on real-time time-dependent density functional theory (RT-TDDFT) with constrained DFT to emulate the state of the system following the interaction with a ultraviolet pump laser. In general, there is a decrease in the optical density and a blue shift in the frequency with increasing electron density around the absorbing atom. In carbon monoxide (CO), modulations in the O K-edge occur at the frequency of the valence electron dynamics, while for dioxygen (O(2)) they occur at twice the frequency, due to the indistinguishability of the oxygen atoms. In 4-aminophenol (H(2)NC(6)H(4)OH), likewise, there is a decrease in the optical density and a blue shift in the frequency for the oxygen and nitrogen K-edges with increasing charge density on the O and N, respectively. Similar effects are observed in the nitrogen K-edge for a long-range charge-transfer excitation in a benzene (C(6)H(6))–tetracyanoethylene (C(6)N(4); TCNE) dimer but with weaker modulations due to the delocalization of the charge across the entire TCNE molecule. Additionally, in all cases, there are pre-edge features corresponding to core transitions to depopulated orbitals. These potentially offer a background-free signal that only appears in pumped molecules.
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spelling pubmed-74676442020-09-03 First-Principles Simulations of X-ray Transient Absorption for Probing Attosecond Electron Dynamics Chen, Min Lopata, Kenneth J Chem Theory Comput [Image: see text] X-ray transient absorption spectroscopy (XTAS) is a promising technique for measuring electron dynamics in molecules and solids with attosecond time resolutions. In XTAS, the elemental specificity and spatial locality of core-to-valence X-ray absorption is exploited to relate modulations in the time-resolved absorption spectra to local electron density variations around particular atoms. However, interpreting these absorption modulations and frequency shifts as a function of the time delay in terms of dynamics can be challenging. In this paper, we present a first-principles study of attosecond XTAS in a selection of simple molecules based on real-time time-dependent density functional theory (RT-TDDFT) with constrained DFT to emulate the state of the system following the interaction with a ultraviolet pump laser. In general, there is a decrease in the optical density and a blue shift in the frequency with increasing electron density around the absorbing atom. In carbon monoxide (CO), modulations in the O K-edge occur at the frequency of the valence electron dynamics, while for dioxygen (O(2)) they occur at twice the frequency, due to the indistinguishability of the oxygen atoms. In 4-aminophenol (H(2)NC(6)H(4)OH), likewise, there is a decrease in the optical density and a blue shift in the frequency for the oxygen and nitrogen K-edges with increasing charge density on the O and N, respectively. Similar effects are observed in the nitrogen K-edge for a long-range charge-transfer excitation in a benzene (C(6)H(6))–tetracyanoethylene (C(6)N(4); TCNE) dimer but with weaker modulations due to the delocalization of the charge across the entire TCNE molecule. Additionally, in all cases, there are pre-edge features corresponding to core transitions to depopulated orbitals. These potentially offer a background-free signal that only appears in pumped molecules. American Chemical Society 2020-05-29 2020-07-14 /pmc/articles/PMC7467644/ /pubmed/32470295 http://dx.doi.org/10.1021/acs.jctc.0c00122 Text en Copyright © 2020 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Chen, Min
Lopata, Kenneth
First-Principles Simulations of X-ray Transient Absorption for Probing Attosecond Electron Dynamics
title First-Principles Simulations of X-ray Transient Absorption for Probing Attosecond Electron Dynamics
title_full First-Principles Simulations of X-ray Transient Absorption for Probing Attosecond Electron Dynamics
title_fullStr First-Principles Simulations of X-ray Transient Absorption for Probing Attosecond Electron Dynamics
title_full_unstemmed First-Principles Simulations of X-ray Transient Absorption for Probing Attosecond Electron Dynamics
title_short First-Principles Simulations of X-ray Transient Absorption for Probing Attosecond Electron Dynamics
title_sort first-principles simulations of x-ray transient absorption for probing attosecond electron dynamics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7467644/
https://www.ncbi.nlm.nih.gov/pubmed/32470295
http://dx.doi.org/10.1021/acs.jctc.0c00122
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