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author Leimbach, David
Karls, Julia
Guo, Yangyang
Ahmed, Rizwan
Ballof, Jochen
Bengtsson, Lars
Pamies, Ferran Boix
Borschevsky, Anastasia
Chrysalidis, Katerina
Eliav, Ephraim
Fedorov, Dmitry
Fedosseev, Valentin
Forstner, Oliver
Galland, Nicolas
Ruiz, Ronald Fernando Garcia
Granados, Camilo
Heinke, Reinhard
Johnston, Karl
Koszorus, Agota
Köster, Ulli
Kristiansson, Moa K.
Liu, Yuan
Marsh, Bruce
Molkanov, Pavel
Pašteka, Lukáš F.
Ramos, João Pedro
Renault, Eric
Reponen, Mikael
Ringvall-Moberg, Annie
Rossel, Ralf Erik
Studer, Dominik
Vernon, Adam
Warbinek, Jessica
Welander, Jakob
Wendt, Klaus
Wilkins, Shane
Hanstorp, Dag
Rothe, Sebastian
Rothe, Sebastian
author_facet Leimbach, David
Karls, Julia
Guo, Yangyang
Ahmed, Rizwan
Ballof, Jochen
Bengtsson, Lars
Pamies, Ferran Boix
Borschevsky, Anastasia
Chrysalidis, Katerina
Eliav, Ephraim
Fedorov, Dmitry
Fedosseev, Valentin
Forstner, Oliver
Galland, Nicolas
Ruiz, Ronald Fernando Garcia
Granados, Camilo
Heinke, Reinhard
Johnston, Karl
Koszorus, Agota
Köster, Ulli
Kristiansson, Moa K.
Liu, Yuan
Marsh, Bruce
Molkanov, Pavel
Pašteka, Lukáš F.
Ramos, João Pedro
Renault, Eric
Reponen, Mikael
Ringvall-Moberg, Annie
Rossel, Ralf Erik
Studer, Dominik
Vernon, Adam
Warbinek, Jessica
Welander, Jakob
Wendt, Klaus
Wilkins, Shane
Hanstorp, Dag
Rothe, Sebastian
Rothe, Sebastian
author_sort Leimbach, David
collection CERN
description One of the most important properties influencing the chemical behavior of an element is the energy released with the addition of an extra electron to the neutral atom, referred to as the electron affinity (EA). Among the remaining elements with unknown EA is astatine, the purely radioactive element 85. Astatine is the heaviest naturally occurring halogen and its isotope $^{211}$At is remarkably well suited for targeted radionuclide therapy of cancer. With the At$^-$ anion being involved in many aspects of current astatine labelling protocols, the knowledge of the electron affinity of this element is of prime importance. In addition, the EA can be used to deduce other concepts such as the electronegativity, thereby further improving the understanding of astatine's chemistry. Here, we report the first measurement of the EA for astatine to be 2.41578(7)eV. This result is compared to state-of-the-art relativistic quantum mechanical calculations, which require incorporation of the electron-electron correlation effects on the highest possible level. The developed technique of laser-photodetachment spectroscopy of radioisotopes opens the path for future EA measurements of other radioelements such as polonium, and eventually super-heavy elements, which are produced at a one-atom-at-a-time rate.
id cern-2724103
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2020
record_format invenio
spelling cern-27241032022-01-14T14:57:22Zdoi:10.1038/s41467-020-17599-2http://cds.cern.ch/record/2724103engLeimbach, DavidKarls, JuliaGuo, YangyangAhmed, RizwanBallof, JochenBengtsson, LarsPamies, Ferran BoixBorschevsky, AnastasiaChrysalidis, KaterinaEliav, EphraimFedorov, DmitryFedosseev, ValentinForstner, OliverGalland, NicolasRuiz, Ronald Fernando GarciaGranados, CamiloHeinke, ReinhardJohnston, KarlKoszorus, AgotaKöster, UlliKristiansson, Moa K.Liu, YuanMarsh, BruceMolkanov, PavelPašteka, Lukáš F.Ramos, João PedroRenault, EricReponen, MikaelRingvall-Moberg, AnnieRossel, Ralf ErikStuder, DominikVernon, AdamWarbinek, JessicaWelander, JakobWendt, KlausWilkins, ShaneHanstorp, DagRothe, SebastianRothe, SebastianThe electron affinity of astatinephysics.atom-phOther Fields of PhysicsOne of the most important properties influencing the chemical behavior of an element is the energy released with the addition of an extra electron to the neutral atom, referred to as the electron affinity (EA). Among the remaining elements with unknown EA is astatine, the purely radioactive element 85. Astatine is the heaviest naturally occurring halogen and its isotope $^{211}$At is remarkably well suited for targeted radionuclide therapy of cancer. With the At$^-$ anion being involved in many aspects of current astatine labelling protocols, the knowledge of the electron affinity of this element is of prime importance. In addition, the EA can be used to deduce other concepts such as the electronegativity, thereby further improving the understanding of astatine's chemistry. Here, we report the first measurement of the EA for astatine to be 2.41578(7)eV. This result is compared to state-of-the-art relativistic quantum mechanical calculations, which require incorporation of the electron-electron correlation effects on the highest possible level. The developed technique of laser-photodetachment spectroscopy of radioisotopes opens the path for future EA measurements of other radioelements such as polonium, and eventually super-heavy elements, which are produced at a one-atom-at-a-time rate.One of the most important properties influencing the chemical behavior of an element is the electron affinity (EA). Among the remaining elements with unknown EA is astatine, where one of its isotopes, $^{211}$At, is remarkably well suited for targeted radionuclide therapy of cancer. With the At− anion being involved in many aspects of current astatine labeling protocols, the knowledge of the electron affinity of this element is of prime importance. Here we report the measured value of the EA of astatine to be 2.41578(7) eV. This result is compared to state-of-the-art relativistic quantum mechanical calculations that incorporate both the Breit and the quantum electrodynamics (QED) corrections and the electron–electron correlation effects on the highest level that can be currently achieved for many-electron systems. The developed technique of laser-photodetachment spectroscopy of radioisotopes opens the path for future EA measurements of other radioelements such as polonium, and eventually super-heavy elements.arXiv:2002.11418oai:cds.cern.ch:27241032020
spellingShingle physics.atom-ph
Other Fields of Physics
Leimbach, David
Karls, Julia
Guo, Yangyang
Ahmed, Rizwan
Ballof, Jochen
Bengtsson, Lars
Pamies, Ferran Boix
Borschevsky, Anastasia
Chrysalidis, Katerina
Eliav, Ephraim
Fedorov, Dmitry
Fedosseev, Valentin
Forstner, Oliver
Galland, Nicolas
Ruiz, Ronald Fernando Garcia
Granados, Camilo
Heinke, Reinhard
Johnston, Karl
Koszorus, Agota
Köster, Ulli
Kristiansson, Moa K.
Liu, Yuan
Marsh, Bruce
Molkanov, Pavel
Pašteka, Lukáš F.
Ramos, João Pedro
Renault, Eric
Reponen, Mikael
Ringvall-Moberg, Annie
Rossel, Ralf Erik
Studer, Dominik
Vernon, Adam
Warbinek, Jessica
Welander, Jakob
Wendt, Klaus
Wilkins, Shane
Hanstorp, Dag
Rothe, Sebastian
Rothe, Sebastian
The electron affinity of astatine
title The electron affinity of astatine
title_full The electron affinity of astatine
title_fullStr The electron affinity of astatine
title_full_unstemmed The electron affinity of astatine
title_short The electron affinity of astatine
title_sort electron affinity of astatine
topic physics.atom-ph
Other Fields of Physics
url https://dx.doi.org/10.1038/s41467-020-17599-2
http://cds.cern.ch/record/2724103
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