0000000000010669

AUTHOR

H. Stolzenberg

showing 11 related works from this author

High-accuracy mass determination of unstable cesium and barium isotopes

1999

Direct mass measurements of short-lived Cs and Ba isotopes have been performed with the tandem Penning trap mass spectrometer ISOLTRAP installed at the on-line isotope separator ISOLDE at CERN. Typically, a mass resolving power of 600 000 and an accuracy of $\delta \mbox{m} \approx 13$ keV have been obtained. The masses of $^{123,124,126}$Ba and $^{122m}$Cs were measured for the first time. A least-squares adjustment has been performed and the experimental masses are compared with theoretical ones, particularly in the frame of a macroscopic-microscopic model.

PhysicsNuclear and High Energy PhysicsIsotope[PHYS.NEXP] Physics [physics]/Nuclear Experiment [nucl-ex]010308 nuclear & particles physicschemistry.chemical_element[PHYS.NEXP]Physics [physics]/Nuclear Experiment [nucl-ex]Mass spectrometryPenning trap7. Clean energy01 natural sciencesISOLTRAPAtomic massNuclear physicsMasschemistryCaesium0103 physical sciencesNuclear Physics - ExperimentAtomic physicsNuclear Experiment010306 general physicsHybrid mass spectrometer
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The Inchworm as a precision translator in a high magnetic field and UHV environment

1989

Abstract A new set-up has been designed and tested for on-line, high-precision mass measurements of short-lived radioactive isotopes via a determination of the ion cyclotron resonance. Ions delivered by the on-line isotope separator ISOLDE at CERN/Geneva are stored in a Penning trap installed in a superconducting solenoid. Due to severe space limitations in the bore of the solenoid, it is impossible to use conventional mechanical feedthroughs for the necessary manipulations inside the uhv chamber. Instead, a number of Inchworms, a high-precision positioning device based on the piezo-electric effect are employed. This publication reports on the first application of this device in a uhv envir…

Large Hadron ColliderPhysics::Instrumentation and Detectorsbusiness.industryChemistryInstrumentationSeparator (oil production)SolenoidCondensed Matter PhysicsPenning trapSurfaces Coatings and FilmsIonMagnetic fieldNuclear physicsOpticsPhysics::Accelerator PhysicsDetectors and Experimental TechniquesNuclear ExperimentbusinessInstrumentationIon cyclotron resonance
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Ramsey technique applied in a Penning trap mass spectrometer

1991

Abstract The Ramsey method has been applied in an experiment aiming for accurate mass determination of unstable isotopes. The ion motion in a Penning trap has been excited with time-separated oscillatory fields and Ramsey fringes were observed in the case of dipole and quadrupole excitation. The experimental resonances are in good agreement with theory. Further applications of the technique are discussed.

Nuclear and High Energy PhysicsChemistryMass spectrometryPenning trapDipoleQuadrupolePhysics::Atomic PhysicsIon trapDetectors and Experimental TechniquesAtomic physicsQuadrupole ion trapInstrumentationQuadrupole mass analyzerHybrid mass spectrometerNuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
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Mass measurements of very high accuracy by time-of-flight ion cyclotron resonance of ions injected into a penning trap

1989

Abstract The possibility of absolute mass measurements using time-of-flight detection of ion cyclotron resonance on ions injected into a Penning trap has been demonstrated. Resolving powers of 2 million have been achieved, with accuracies of about 0.5 ppm. Absolute accuracy is obtained by direct observation of the sum frequency of the cyclotron and the magnetron motions through the use of an azimuthal quadrupole r.f. field to transform initial magnetron motion into cyclotron motion. Imperfections of the Penning trap leading to systematic errors are discussed. The system has been designed specifically to measure the masses of radionuclides produced at the on-line isotope separator ISOLDE. Wi…

ChemistryCyclotronPenning trapFourier transform ion cyclotron resonancelaw.inventionIonTime of flightlawQuadrupoleDetectors and Experimental TechniquesAtomic physicsNuclear ExperimentSpectroscopyRadioactive decayIon cyclotron resonanceInternational Journal of Mass Spectrometry and Ion Processes
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First absolute mass measurements of short-lived isotopes

1987

Absolute mass measurements of short-lived isotopes have been performed at the on-line mass separator ISOLDE at CERN by determining the cyclotron frequencies of ions confined in a Penning trap. The cyclotron frequencies for77,78,85,86,88Rb and88Sr ions could be determined with a resolving power of 3×105 and an accuracy of better than 10−6, which corresponds to 100 keV for massA=100. The shortest-lived isotope under investigation was77Rb with a half-life of 3.7 min. The resonances obtained for the isobars88Rb and88Sr were clearly resolved.

Nuclear and High Energy PhysicsLarge Hadron ColliderIsotopeChemistryShort lived isotopesCyclotronCondensed Matter PhysicsPenning trapAtomic and Molecular Physics and OpticsFourier transform ion cyclotron resonanceIonlaw.inventionlawNuclear Physics - ExperimentPhysical and Theoretical ChemistryAtomic physicsIon cyclotron resonanceHyperfine Interactions
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Highly-charged ions in a penning trap: mass measurements, etc.

1991

The use of a Penning trap will start a new generation of precision experiments on highly charged ions. The long storage time of the ions in combination with a controlled confinement in a very small volume will enable accuracies in mass determination better than δm/m = 10-8.

PhysicsIonizationCyclotron resonanceIon trapAtomic physicsMass spectrometryPenning trapCharged particleIon cyclotron resonanceIon
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Penning-trap mass measurements of neutron-deficient Rb and Sr isotopes

1993

Abstract The Penning-trap mass spectrometer ISOLTRAP installed at the on-line mass separator ISOLDE 2 at CERN has been used for mass determination of 75–87 Rb and 78–83,87 Sr. Ions are captured in a Penning trap and their cyclotron frequency ω c = ( q m )B in the trapping field B is measured. Ratios of these frequencies lead to the determination of the atomic mass of these isotopes. A resolving power of typically m Δm = 10 6 and an accuracy of δm ≈10 keV is obtained. The mass of 78 Sr is measured for the first time and, in most cases, the mass values of the other isotopes are significantly improved. The experimental masses are compared with theoretical predictions.

PhysicsNuclear and High Energy Physics010308 nuclear & particles physics[PHYS.NEXP] Physics [physics]/Nuclear Experiment [nucl-ex]Isotopes of chlorine[PHYS.NEXP]Physics [physics]/Nuclear Experiment [nucl-ex]Penning trapMass spectrometry7. Clean energy01 natural sciencesISOLTRAPIsotopes of oxygenAtomic massNuclear physicsMass0103 physical sciencesNuclear Physics - ExperimentAtomic physics010306 general physicsQuadrupole mass analyzer
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High-Accuracy Mass Determination of Unstable Rb, Sr, Cs, Ba, Fr and Ra Isotopes with a Penning Trap Mass Spectrometer

1991

The majority of masses of radioactive isotopes has been measured by determination of Q-values in nuclear reactions or in nuclear decay. For a long time the use of direct mass determination has been limited to stable isotopes or isotopes close to stability. This changed in the 70’s with magnetic spectrometers put on-line to isotope separators. The Orsay group (Audi et al., 1986) succeeded in measuring the masses in long isotope chains of alkali elements. They impressively demonstrated the possibilities embedded in direct mass determination of isotopes far from stability. The persisting demand for more precise masses of short-lived isotopes (or exotic particles) has prompted during recent yea…

Nuclear reactionSpectrometerIsotopeChemistryStable isotope ratioCyclotron02 engineering and technology[PHYS.NEXP]Physics [physics]/Nuclear Experiment [nucl-ex]021001 nanoscience & nanotechnologyMass spectrometryPenning trap01 natural sciences7. Clean energylaw.inventionNuclear physicslaw0103 physical sciencesPhysics::Atomic PhysicsNuclear Experiment010306 general physics0210 nano-technologyRadioactive decay
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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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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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Resolution of nuclear ground and isomeric states by a Penning trap mass spectrometer.

1992

Ground and isomeric states of a nucleus have been resolved for the first time by mass spectrometry. Measurements on $^{78}\mathrm{Rb}^{\mathit{m},}$g and $^{84}\mathrm{Rb}^{\mathit{m},}$g were performed using a tandem Penning trap mass spectrometer on-line with the isotope separator ISOLDE/CERN. The effects of ion-ion interaction were investigated for two ion species differing in mass and stored simultaneously in the trap.

PhysicsNuclear and High Energy PhysicsIsotopeTandem010308 nuclear & particles physics[PHYS.NEXP] Physics [physics]/Nuclear Experiment [nucl-ex]Nuclear structure[PHYS.NEXP]Physics [physics]/Nuclear Experiment [nucl-ex]Mass spectrometryPenning trap01 natural sciencesISOLTRAPIsotopes of rubidiumIon0103 physical sciencesNuclear Physics - ExperimentPhysics::Atomic PhysicsAtomic physicsNuclear Experiment010306 general physicsPhysical review. C, Nuclear physics
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