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  4. High intensity x-ray interaction with a model bio-molecule system: double-core-hole states and fragmentation of formamide
 
research article

High intensity x-ray interaction with a model bio-molecule system: double-core-hole states and fragmentation of formamide

Koulentianos, D.
•
Fouda, A. E. A.
•
Southworth, S. H.
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December 28, 2020
Journal Of Physics B-Atomic Molecular And Optical Physics

Formamide, a simple model bio-molecule (HCONH2), is irradiated with high intensity, ultrashort pulses from an x-ray free electron laser. Ionic fragments resulting from photoionization and subsequent decay processes are recorded, as well as the electronic signature of the different inner shell ionization events that can take place during the x-ray pulses. The formation of double-core-hole states, where a second inner shell electron is removed before the first core hole has been refilled is observed in the electron spectra, recorded at all three sites (C, N, O) of the molecule. The individual ionization potentials are compared with results of ab initio calculations at different level of theory. Based on our results, future opportunities for advanced studies of inner-shell-induced electronic and nuclear dynamics are explored.

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Type
research article
DOI
10.1088/1361-6455/abc183
Web of Science ID

WOS:000592079600001

Author(s)
Koulentianos, D.
Fouda, A. E. A.
Southworth, S. H.
Bozek, J. D.
Kupper, J.
Santra, R.
Kryzhevoi, N., V
Cederbaum, L. S.
Bostedt, C.  
Messerschmidt, M.
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Date Issued

2020-12-28

Published in
Journal Of Physics B-Atomic Molecular And Optical Physics
Volume

53

Issue

24

Article Number

244005

Subjects

Optics

•

Physics, Atomic, Molecular & Chemical

•

Physics

•

x-ray free electron laser

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double core hole spectroscopy

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photoemission

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double vacancies

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electron-spectroscopy

•

ionization

•

atoms

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LUXS  
Available on Infoscience
December 9, 2020
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/173953
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