Search results for "ISOLTRAP"

showing 10 items of 64 documents

Recent Exploits of the ISOLTRAP Mass Spectrometer

2013

Abstract The Penning-trap mass spectrometer ISOLTRAP, located at the isotope-separator facility ISOLDE (CERN), is presented in its current form taking into account technical developments since 2007. Three areas of developments are presented. The reference ion sources have been modified to guarantee a sufficient supply of reference ions for mass measurements and systematic studies. Different excitation schemes have been investigated for manipulation of the ion motion in the Penning trap, to enhance either the purification or measurement process. A multi-reflection time-of-flight mass separator has been implemented and can now be routinely used for purification and as a versatile tool for bea…

Penning-trap mass spectrometryNuclear and High Energy PhysicsLarge Hadron ColliderIon beam analysisChemistry010401 analytical chemistryMeasurement of pure ion ensembles[PHYS.NEXP]Physics [physics]/Nuclear Experiment [nucl-ex]Mass spectrometryPenning trap01 natural sciencesISOLTRAPMulti-reflection time-of-flight mass separator0104 chemical sciencesSecondary ion mass spectrometryNuclear physicsIon-beam analysis0103 physical sciencesBeam purificationIon trapAtomic physics010306 general physicsNuclear ExperimentInstrumentationHybrid mass spectrometer
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Examining the N=28 shell closure through high-precision mass measurements of Ar46–48

2020

The strength of the $N=28$ magic number in neutron-rich argon isotopes is examined through high-precision mass measurements of $^{46\text{--}48}\mathrm{Ar}$, performed with the ISOLTRAP mass spectrometer at ISOLDE/CERN. The new mass values are up to 90 times more precise than previous measurements. While they suggest the persistence of the $N=28$ shell closure for argon, we show that this conclusion has to be nuanced in light of the wealth of spectroscopic data and theoretical investigations performed with the SDPF-U phenomenological shell model interaction. Our results are also compared with ab initio calculations using the valence space in-medium similarity renormalization group and the s…

PhysicsArgonValence (chemistry)010308 nuclear & particles physicsSHELL modelchemistry.chemical_elementIsotopes of argonRenormalization groupMass spectrometry01 natural sciencesISOLTRAPchemistryAb initio quantum chemistry methods0103 physical sciencesPhysics::Atomic and Molecular ClustersAtomic physics010306 general physicsPhysical Review C
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Mass spectrometry of atomic ions produced by in-trap decay of short-lived nuclides

2005

The triple-trap mass spectrometer ISOLTRAP at ISOLDE/CERN has demonstrated the feasibility of mass spectrometry of in-trap-decay product ions. This novel technique gives access to radionuclides, which are not produced directly at ISOL-type radioactive ion beam facilities. As a proof of principle, the in-trap decay of $^{37}K^+$ has been investigated in a Penning trap filled with helium buffer gas. The half-life of the mother nuclide was confirmed and the recoiling $^{37}Ar^+$ daughter ion was contained within the trap. The ions of either the mother or the daughter nuclide were transferred to a precision Penning trap, where their mass was determined.

PhysicsCondensed Matter::Quantum Gases010308 nuclear & particles physicsGeneral Physics and AstronomyThermal ionization mass spectrometry[PHYS.NEXP]Physics [physics]/Nuclear Experiment [nucl-ex]Mass spectrometryPenning trap01 natural sciencesISOLTRAPSecondary ion mass spectrometry0103 physical sciencesPhysics::Accelerator PhysicsNuclidePhysics::Atomic PhysicsDecay productAtomic physics010306 general physicsNuclear ExperimentHybrid mass spectrometer
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Accurate mass determination of short-lived isotopes by a tandem Penning-trap mass spectrometer

1990

A mass spectrometer consisting of two Penning traps has been set up for short-lived isotopes at the on-line mass separator ISOLDE at CERN. The ion beam is collected and cooled in the first trap. After delivery to the second trap, high-accuracy direct mass measurements are made by determining the cyclotron frequency of the stored ions. Measurements have been performed for $^{118}--^{137}$Cs. A resolving power of over ${10}^{6}$ and an accuracy of 1.4\ifmmode\times\else\texttimes\fi{}${10}^{\mathrm{\ensuremath{-}}7}$ have been achieved, corresponding to about 20 keV.

PhysicsIon beamCyclotronCyclotron resonanceGeneral Physics and AstronomyMass spectrometryPenning trapISOLTRAPlaw.inventionNuclear physicslawMass spectrumPhysics::Atomic PhysicsDetectors and Experimental TechniquesNuclear ExperimentHybrid mass spectrometerPhysical Review Letters
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Penning-trap mass spectrometry and mean-field study of nuclear shape coexistence in the neutron-deficient lead region

2017

We present a study of nuclear shape coexistence in the region of neutron-deficient lead isotopes. The midshell gold isotopes 180,185,188,190Au (Z=79), the two long-lived nuclear states in 197At (Z=85), and the neutron-rich nuclide 219At were produced by the ISOLDE facility at CERN and their masses were determined with the high-precision Penning-trap mass spectrometer ISOLTRAP. The studied gold isotopes address the trend of binding energies in a region of the nuclear chart where the nuclear charge radii show pronounced discontinuities. Significant deviations from the atomic-mass evaluation were found for 188,190Au. The new trend of two-neutron separation energies is smoother, although it doe…

PhysicsIsotope010308 nuclear & particles physicsBinding energyNuclear Theory[PHYS.NEXP]Physics [physics]/Nuclear Experiment [nucl-ex]Penning trap01 natural sciencesISOLTRAPEffective nuclear chargeNuclear physics0103 physical sciencesNeutronIsotopes of goldNuclide010306 general physicsNuclear Experiment
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Restoration of theN=82Shell Gap from Direct Mass Measurements ofSn132,134

2008

A high-precision direct Penning trap mass measurement has revealed a 0.5-MeV deviation of the binding energy of (134)Sn from the currently accepted value. The corrected mass assignment of this neutron-rich nuclide restores the neutron-shell gap at N=82, previously considered to be a case of "shell quenching." In fact, the new shell gap value for the short-lived (132)Sn is larger than that of the doubly magic (48)Ca which is stable. The N=82 shell gap has considerable impact on fission recycling during the r process. More generally, the new finding has important consequences for microscopic mean-field theories which systematically deviate from the measured binding energies of closed-shell nu…

PhysicsIsotope010308 nuclear & particles physicsFissionNuclear TheoryBinding energyGeneral Physics and AstronomyMass spectrometryPenning trap01 natural sciencesISOLTRAP0103 physical sciencesPhysics::Atomic and Molecular Clustersr-processNuclideAtomic physicsNuclear Experiment010306 general physicsPhysical Review Letters
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Mass Determination of Francium and Radium Isotopes by a Penning Trap Mass Spectrometer

1992

Abstract A tandem Penning trap mass spectrometer is used for mass measurement of radioactive isotopes produced at the on-line isotope separator ISOLDE/CERN. The mass is determined directly and with high accuracy by measuring the cyclotron frequency of the stored ions. Measurements were performed on 209 210 211 212 221 222Fr and 226 230Ra. A resolving power of 5 × 105 was used and an accuracy of 1·8 × 10−7 has been achieved.

PhysicsIsotopeCyclotronchemistry.chemical_elementMass spectrometryPenning trapISOLTRAPAtomic and Molecular Physics and OpticsFranciumlaw.inventionRadiumNuclear physicschemistrylawNuclear Physics - ExperimentHybrid mass spectrometerJournal of Modern Optics
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Spectroscopy of the long-lived excited state in the neutron-deficient nuclides Po195,197,199 by precision mass measurements

2017

Direct mass measurements of the low-spin 3/2(-) and high-spin 13/2(+) states in the neutron-deficient isotopes Po-195 and Po-197 were performed with the Penning-trap mass spectrometer ISOLTRAP at ISOLDE-CERN. These measurements allow the determination of the excitation energy of the isomeric state arising from the nu i(13/2) orbital in Po-195,Po-197. Additionally, the excitation energy of isomeric states of lead, radon, and radium isotopes in this region were obtained from alpha-decay chains. These excitation energies complete the knowledge of the energy systematics in the region and confirm that the 13/2(+) states remain isomeric, independent of the number of valence neutrons.

PhysicsIsotopeSpectrometer010308 nuclear & particles physics01 natural sciences7. Clean energyISOLTRAPNuclear physicsExcited state0103 physical sciencesNeutronNuclideAtomic physicsNuclear Experiment010306 general physicsSpectroscopyExcitationPhysical Review C
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Mass Measurement on therp-Process Waiting PointKr72

2004

With the aim of improving nucleosynthesis calculations, we performed for the first time, a direct high-precision mass measurement on the waiting point in the astrophysical rp-process 72Kr. We used the ISOLTRAP Penning trap mass spectrometer located at ISOLDE/CERN. The measurement yielded a relative mass uncertainty of δm/m = 1.2×10-7. In addition, the masses of 73Kr and 74Kr were measured directly with relative mass uncertainties of 1.0×10-7 and 3×10-8, respectively. We analyzed the role of 72Kr in the rp-process during X-ray bursts using the ISOLTRAP and previous mass values of 72-74Kr.

PhysicsLarge Hadron Collider010308 nuclear & particles physicsCyclotronGeneral Physics and Astronomyrp-processMass spectrometryPenning trap01 natural sciencesISOLTRAPlaw.inventionNuclear physicsNucleosynthesislaw0103 physical sciencesPoint (geometry)010306 general physicsPhysical Review Letters
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Mass measurements on unstable Sn and Sr isotopes with the ISOLTRAP mass spectrometer

2001

Direct mass measurements have been performed on the isotopes 76,77,80,81Sr and 129,130,131,132Sn by means of the Penning trap mass spectrometer ISOLTRAP at ISOLDE/CERN. In the case of 76Sr the mass was measured for the first time and an accuracy of about 30 keV was reached (Fig. 1). The masses of the tin isotopes are known for a long time from Q β measurements.

PhysicsLarge Hadron ColliderIsotope[PHYS.NEXP] Physics [physics]/Nuclear Experiment [nucl-ex][PHYS.NEXP]Physics [physics]/Nuclear Experiment [nucl-ex]Penning trapMass spectrometry01 natural sciencesISOLTRAP010305 fluids & plasmasNuclear physics0103 physical sciencesIsotopes of tin010306 general physics
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