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  4. Time-resolved formation of excited atomic and molecular states in XUV-induced nanoplasmas in ammonia clusters
 
research article

Time-resolved formation of excited atomic and molecular states in XUV-induced nanoplasmas in ammonia clusters

Michiels, Rupert
•
LaForge, Aaron C.
•
Bohlen, Matthias
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April 21, 2020
Physical Chemistry Chemical Physics

High intensity XUV radiation from a free-electron laser (FEL) was used to create a nanoplasma inside ammonia clusters with the intent of studying the resulting electron-ion interactions and their interplay with plasma evolution. In a plasma-like state, electrons with kinetic energy lower than the local collective Coulomb potential of the positive ionic core are trapped in the cluster and take part in secondary processes (e.g. electron-impact excitation/ionization and electron-ion recombination) which lead to subsequent excited and neutral molecular fragmentation. Using a time-delayed UV laser, the dynamics of the excited atomic and molecular states are probed from -0.1 ps to 18 ps. We identify three different phases of molecular fragmentation that are clearly distinguished by the effect of the probe laser on the ionic and electronic yield. We propose a simple model to rationalize our data and further identify two separate channels leading to the formation of excited hydrogen.

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Type
research article
DOI
10.1039/d0cp00669f
Web of Science ID

WOS:000529178800013

Author(s)
Michiels, Rupert
•
LaForge, Aaron C.
•
Bohlen, Matthias
•
Callegari, Carlo
•
Clark, Andrew  
•
von Conta, Aaron
•
Coreno, Marcello
•
Di Fraia, Michele
•
Drabbels, Marcel  
•
Finetti, Paola
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Date Issued

2020-04-21

Publisher

ROYAL SOC CHEMISTRY

Published in
Physical Chemistry Chemical Physics
Volume

22

Issue

15

Start page

7828

End page

7834

Subjects

Chemistry, Physical

•

Physics, Atomic, Molecular & Chemical

•

Chemistry

•

Physics

•

photoionization-induced dynamics

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wave-packet calculations

•

coulomb explosion

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multiple-ionization

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nanosecond laser

•

fragmentation

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dissociation

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photodissociation

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driven

•

pulses

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LND  
Available on Infoscience
May 17, 2020
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/168792
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