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Radioactive negative ions: Production and laser spectroscopy at ISOLDE

Negative ions are fragile quantum systems in which electron correlation effects play a significant role in the binding of the extra electron to the atom or molecule. Hence, negative ions are of interest to gain insight into fundamental atomic properties by probing theory beyond the independent parti...

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Autor principal: Leimbach, David
Lenguaje:eng
Publicado: 2021
Materias:
Acceso en línea:https://dx.doi.org/10.17181/CERN-THESIS-2021-083
http://cds.cern.ch/record/2775218
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author Leimbach, David
author_facet Leimbach, David
author_sort Leimbach, David
collection CERN
description Negative ions are fragile quantum systems in which electron correlation effects play a significant role in the binding of the extra electron to the atom or molecule. Hence, negative ions are of interest to gain insight into fundamental atomic properties by probing theory beyond the independent particle model. However, due to the shallow binding potential, the binding energy of the extra electron, referred to as electron affinity (EA) is typically the only atomic parameter which can be determined with high precision. This thesis concerns production and spectroscopy of radioactive negative ions at CERN-ISOLDE. A key result in the study of radioactive negative ions is presented with the determination of the electron affinity of astatine by means of collinear laser photodetachment spectroscopy. This experiment was performed utilising the Gothenburg ANion Detector for Affinity measurements by Laser PHotodetachment (GANDALPH), which underwent a detector upgrade to allow for operation in the UV spectrum using a novel, fully transparent graphene target. The EA of astatine was determined to be 2.41578(7) eV, which not only serves as a milestone towards the investigation of other heavy and eventually super-heavy negative ions, but also facilitates the use of astatine in targeted radionuclide therapy of cancer by revealing some of its fundamental chemical behaviour. Furthermore, work towards the improvement of the sensitivity of laser photodetachment threshold spectroscopy was performed by utilising a Multi Reflection Time of Flight (MR-ToF) device. In respect to the production of radioactive negative ions, efforts have been made to increase the production efficiency and broaden the availability of negative ions at ISOLDE. As an alternative low work function surface ioniser material, SrVO3 was produced and characterised and alternatively the use of caesiated metal surfaces was explored. Furthermore, sputter type negative ion production was investigated utilising a FEBIAD type ion source as well as the modified KENIS ion source.
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publishDate 2021
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spelling cern-27752182023-02-14T08:22:28Zdoi:10.17181/CERN-THESIS-2021-083http://cds.cern.ch/record/2775218engLeimbach, DavidRadioactive negative ions: Production and laser spectroscopy at ISOLDENuclear Physics - ExperimentNegative ions are fragile quantum systems in which electron correlation effects play a significant role in the binding of the extra electron to the atom or molecule. Hence, negative ions are of interest to gain insight into fundamental atomic properties by probing theory beyond the independent particle model. However, due to the shallow binding potential, the binding energy of the extra electron, referred to as electron affinity (EA) is typically the only atomic parameter which can be determined with high precision. This thesis concerns production and spectroscopy of radioactive negative ions at CERN-ISOLDE. A key result in the study of radioactive negative ions is presented with the determination of the electron affinity of astatine by means of collinear laser photodetachment spectroscopy. This experiment was performed utilising the Gothenburg ANion Detector for Affinity measurements by Laser PHotodetachment (GANDALPH), which underwent a detector upgrade to allow for operation in the UV spectrum using a novel, fully transparent graphene target. The EA of astatine was determined to be 2.41578(7) eV, which not only serves as a milestone towards the investigation of other heavy and eventually super-heavy negative ions, but also facilitates the use of astatine in targeted radionuclide therapy of cancer by revealing some of its fundamental chemical behaviour. Furthermore, work towards the improvement of the sensitivity of laser photodetachment threshold spectroscopy was performed by utilising a Multi Reflection Time of Flight (MR-ToF) device. In respect to the production of radioactive negative ions, efforts have been made to increase the production efficiency and broaden the availability of negative ions at ISOLDE. As an alternative low work function surface ioniser material, SrVO3 was produced and characterised and alternatively the use of caesiated metal surfaces was explored. Furthermore, sputter type negative ion production was investigated utilising a FEBIAD type ion source as well as the modified KENIS ion source.CERN-THESIS-2021-083oai:cds.cern.ch:27752182021-07-08T14:23:37Z
spellingShingle Nuclear Physics - Experiment
Leimbach, David
Radioactive negative ions: Production and laser spectroscopy at ISOLDE
title Radioactive negative ions: Production and laser spectroscopy at ISOLDE
title_full Radioactive negative ions: Production and laser spectroscopy at ISOLDE
title_fullStr Radioactive negative ions: Production and laser spectroscopy at ISOLDE
title_full_unstemmed Radioactive negative ions: Production and laser spectroscopy at ISOLDE
title_short Radioactive negative ions: Production and laser spectroscopy at ISOLDE
title_sort radioactive negative ions: production and laser spectroscopy at isolde
topic Nuclear Physics - Experiment
url https://dx.doi.org/10.17181/CERN-THESIS-2021-083
http://cds.cern.ch/record/2775218
work_keys_str_mv AT leimbachdavid radioactivenegativeionsproductionandlaserspectroscopyatisolde