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High-Precision Multiphoton Ionization of Accelerated Laser-Ablated Species

We demonstrate that the pulsed-time structure and high-peak ion intensity provided by the laser-ablation process can be directly combined with the high resolution, high efficiency, and low background offered by collinear resonance ionization spectroscopy. This simple, versatile, and powerful method...

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Autores principales: Garcia Ruiz, R  F, Vernon, A  R, Binnersley, C  L, Sahoo, B  K, Bissell, M, Billowes, J, Cocolios, T  E, Gins, W, de Groote, R  P, Flanagan, K  T, Koszorus, A, Lynch, K  M, Neyens, G, Ricketts, C  M, Wendt, K  D  A, Wilkins, S  G, Yang, X  F
Lenguaje:eng
Publicado: 2018
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevX.8.041005
http://cds.cern.ch/record/2647252
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author Garcia Ruiz, R  F
Vernon, A  R
Binnersley, C  L
Sahoo, B  K
Bissell, M
Billowes, J
Cocolios, T  E
Gins, W
de Groote, R  P
Flanagan, K  T
Koszorus, A
Lynch, K  M
Neyens, G
Ricketts, C  M
Wendt, K  D  A
Wilkins, S  G
Yang, X  F
author_facet Garcia Ruiz, R  F
Vernon, A  R
Binnersley, C  L
Sahoo, B  K
Bissell, M
Billowes, J
Cocolios, T  E
Gins, W
de Groote, R  P
Flanagan, K  T
Koszorus, A
Lynch, K  M
Neyens, G
Ricketts, C  M
Wendt, K  D  A
Wilkins, S  G
Yang, X  F
author_sort Garcia Ruiz, R  F
collection CERN
description We demonstrate that the pulsed-time structure and high-peak ion intensity provided by the laser-ablation process can be directly combined with the high resolution, high efficiency, and low background offered by collinear resonance ionization spectroscopy. This simple, versatile, and powerful method offers new and unique opportunities for high-precision studies of atomic and molecular structures, impacting fundamental and applied physics research. We show that even for ion beams possessing a relatively large energy spread, high-resolution hyperfine-structure measurements can be achieved by correcting the observed line shapes with the time-of-flight information of the resonantly ionized ions. This approach offers exceptional advantages for performing precision measurements on beams with large energy spreads and allows measurements of atomic parameters of previously inaccessible electronic states. The potential of this experimental method in multidisciplinary research is illustrated by performing, for the first time, hyperfine-structure measurements of selected states in the naturally occurring isotopes of indium, $^{113,115}$In. Ab initio atomic-physics calculations have been performed to highlight the importance of our findings in the development of state-of-the-art atomic many-body methods, nuclear structure, and fundamental-physics studies.
id oai-inspirehep.net-1698109
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2018
record_format invenio
spelling oai-inspirehep.net-16981092022-08-10T12:29:00Zdoi:10.1103/PhysRevX.8.041005http://cds.cern.ch/record/2647252engGarcia Ruiz, R  FVernon, A  RBinnersley, C  LSahoo, B  KBissell, MBillowes, JCocolios, T  EGins, Wde Groote, R  PFlanagan, K  TKoszorus, ALynch, K  MNeyens, GRicketts, C  MWendt, K  D  AWilkins, S  GYang, X  FHigh-Precision Multiphoton Ionization of Accelerated Laser-Ablated SpeciesPhysics in GeneralWe demonstrate that the pulsed-time structure and high-peak ion intensity provided by the laser-ablation process can be directly combined with the high resolution, high efficiency, and low background offered by collinear resonance ionization spectroscopy. This simple, versatile, and powerful method offers new and unique opportunities for high-precision studies of atomic and molecular structures, impacting fundamental and applied physics research. We show that even for ion beams possessing a relatively large energy spread, high-resolution hyperfine-structure measurements can be achieved by correcting the observed line shapes with the time-of-flight information of the resonantly ionized ions. This approach offers exceptional advantages for performing precision measurements on beams with large energy spreads and allows measurements of atomic parameters of previously inaccessible electronic states. The potential of this experimental method in multidisciplinary research is illustrated by performing, for the first time, hyperfine-structure measurements of selected states in the naturally occurring isotopes of indium, $^{113,115}$In. Ab initio atomic-physics calculations have been performed to highlight the importance of our findings in the development of state-of-the-art atomic many-body methods, nuclear structure, and fundamental-physics studies.oai:inspirehep.net:16981092018
spellingShingle Physics in General
Garcia Ruiz, R  F
Vernon, A  R
Binnersley, C  L
Sahoo, B  K
Bissell, M
Billowes, J
Cocolios, T  E
Gins, W
de Groote, R  P
Flanagan, K  T
Koszorus, A
Lynch, K  M
Neyens, G
Ricketts, C  M
Wendt, K  D  A
Wilkins, S  G
Yang, X  F
High-Precision Multiphoton Ionization of Accelerated Laser-Ablated Species
title High-Precision Multiphoton Ionization of Accelerated Laser-Ablated Species
title_full High-Precision Multiphoton Ionization of Accelerated Laser-Ablated Species
title_fullStr High-Precision Multiphoton Ionization of Accelerated Laser-Ablated Species
title_full_unstemmed High-Precision Multiphoton Ionization of Accelerated Laser-Ablated Species
title_short High-Precision Multiphoton Ionization of Accelerated Laser-Ablated Species
title_sort high-precision multiphoton ionization of accelerated laser-ablated species
topic Physics in General
url https://dx.doi.org/10.1103/PhysRevX.8.041005
http://cds.cern.ch/record/2647252
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