0000000000524750

AUTHOR

Oliver Forstner

0000-0003-3636-4669

showing 5 related works from this author

Isobar suppression in AMS using laser photodetachment

2008

Abstract We are investigating the possibility of using laser photodetachment of negative atomic and molecular ions as an additional isobaric selection filter in accelerator mass spectrometry. The aim of this study is to find a possibility to further improve the detection limit for long-lived heavy radionuclides at AMS facilities. We will focus on the astrophysical relevant radionuclide 182Hf, which is one of the isotopes measured with the 3 MV tandem AMS facility VERA (Vienna Environmental Research Accelerator) at the University of Vienna. Laser-induced isobar suppression is also of importance for radioactive-beam facilities. The present detection limit for measuring the isotope ratio 182Hf…

Nuclear and High Energy PhysicsIon beamChemistryLaserMass spectrometrylaw.inventionIonNuclear physicslawIsobarAtomic physicsSpectroscopyInstrumentationTunable laserAccelerator mass spectrometryNuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
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Depletion of the excited state population in negative ions using laser photodetachment in a gas-filled RF quadrupole ion guide

2010

International audience; The depopulation of excited states in beams of negatively charged carbon and silicon ions was demonstrated using collisional detachment and laser photodetachment in a radio frequency quadrupole ion guide filled with helium. The high lying, loosely bound 2 D excited state in C − was completely depleted through collisional detachment alone, which was quantitatively determined within 6%. For Si − the combined signal from the population in the 2 P and 2 D excited states was only partly depleted through collisions in the cooler. The loosely bound 2 P state was likely to be completely depopulated and the more tightly bound 2 D state was partly depopulated through collision…

Physicseducation.field_of_studyPopulationchemistry.chemical_elementCondensed Matter PhysicsLaser01 natural sciences7. Clean energyAtomic and Molecular Physics and Opticslaw.inventionIon010309 opticschemistrylawExcited state0103 physical sciencesQuadrupolePhysical SciencesLaser power scalingAtomic physics010306 general physicsGround stateeducationHelium
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Feasibility of photodetachment isobar suppression of WF with respect to HfF

2014

Abstract The feasibility of using laser photodetachment as a means for isobar suppression in accelerator mass spectrometry has been investigated for the special case of HfF 5 − /WF 5 − . A method for absolute photodetachment cross section measurements was applied and the cross sections of tungsten pentafluoride and hafnium pentafluoride negative ions were measured. The measurements indicate that the photodetachment cross section for WF 5 − is at least 100 times larger than for HfF 5 − at the wavelength of the fourth harmonic of the Nd:YAG laser at 266 nm. The absolute cross section for WF 5 − at this photon energy was found to be (2.8 ± 0.3) × 10 −18  cm 2 , while an upper limit of 2 × 10 −…

Pentafluoridechemistry.chemical_elementPhoton energyCondensed Matter PhysicsLaserIonHafniumlaw.inventionCross section (physics)chemistrylawIsobarPhysical and Theoretical ChemistryAtomic physicsInstrumentationSpectroscopyAccelerator mass spectrometryInternational Journal of Mass Spectrometry
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The electron affinity of astatine

2020

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, 211At, 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…

Atomic Physics (physics.atom-ph)ENERGIESGeneral Physics and AstronomyElectron01 natural sciences7. Clean energyPhysics - Atomic PhysicsElectronegativityastatiinielectron affinityPhysics::Atomic Physicslcsh:SciencePhysicsMultidisciplinary010304 chemical physicsIsotopeQELECTRONEGATIVITYMultidisciplinary SciencesHalogenScience & Technology - Other Topicsddc:500Atomic physicsBASIS-SET CONVERGENCE[CHIM.RADIO]Chemical Sciences/RadiochemistryRadioactive decayChemical physicsAstrophysics::High Energy Astrophysical PhenomenaScienceComputer Science::Neural and Evolutionary ComputationOther Fields of PhysicsPOTENTIALSFOS: Physical scienceschemistry.chemical_elementphysics.atom-phGeneral Biochemistry Genetics and Molecular BiologyArticleIonElectron affinity0103 physical sciences[CHIM]Chemical Sciences010306 general physicsAstatineDETECTORScience & TechnologySTABILITYRadiochemistry500General Chemistrychemistrylcsh:Qastatine
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Laser photodetachment of radioactive $^{128}$I$^−$

2017

International audience; The first experimental investigation of the electron affinity (EA) of a radioactive isotope has been conducted at the CERN-ISOLDE radioactive ion beam facility. The EA of the radioactive iodine isotope (128)I (t (1/2) = 25 min) was determined to be 3.059 052(38) eV. The experiment was conducted using the newly developed Gothenburg ANion Detector for Affinity measurements by Laser PHotodetachment (GANDALPH) apparatus, connected to a CERN-ISOLDE experimental beamline. (128)I was produced in fission induced by 1.4 GeV protons striking a thorium/tantalum foil target and then extracted as singly charged negative ions at a beam energy of 20 keV. Laser photodetachment of th…

Nuclear and High Energy PhysicsIon beamFissionPhysics::Instrumentation and Detectors[PHYS.PHYS.PHYS-ACC-PH]Physics [physics]/Physics [physics]/Accelerator Physics [physics.acc-ph]02 engineering and technologyPhoton energy01 natural sciences7. Clean energySecondary electronsISOLDElaw.inventionIonlawElectron affinity0103 physical scienceselectron affinityPhysics::Atomic Physics010306 general physicsNuclear ExperimentPhysicsiodinephotodetachment021001 nanoscience & nanotechnologyLaserAccelerators and Storage RingsBeamlinePhysics::Accelerator PhysicsAtomic physics0210 nano-technology
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