Search results for "Trap"

showing 10 items of 2144 documents

A cylindrical Penning trap for capture, mass selective cooling, and bunching of radioactive ion beams

1997

Abstract A Penning trap ion accumulator, cooler, and buncher for low-energy ion beams has been developed for the ISOLTRAP mass spectrometer at ISOLDE/CERN. A cylindrical electrode configuration is used for the creation of a nested trapping potential. This is required for efficient accumulation of externally produced ions and for high-mass selectivity by buffer gas cooling. The design goal of a mass resolving power of about 1 × 10 5 has been achieved. Isobar separation has been demonstrated for radioactive rare-earth ion beams delivered by the ISOLDE on-line mass separator.

Nuclear and High Energy PhysicsIon beamChemistryMass spectrometryPenning trapIon gunISOLTRAPIon sourceNuclear physicsSecondary ion mass spectrometryPhysics::Accelerator PhysicsIon trapDetectors and Experimental TechniquesAtomic physicsNuclear ExperimentInstrumentationNuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
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New developments of the in-source spectroscopy method at RILIS/ISOLDE

2013

At the CERN ISOLDE facility, long isotope chains of many elements are produced by proton-induced reactions in target materials such as uranium carbide. The Resonance Ionization Laser Ion Source (RILIS) is an efficient and selective means of ionizing the reaction products to produce an ion beam of a chosen isotope. Coupling the RILIS with modern ion detection techniques enables highly sensitive studies of nuclear properties (spins, electromagnetic moments and charge radii) along an isotope chain, provided that the isotope shifts and hyperfine structure splitting of the atomic transitions can be resolved. At ISOLDE the campaign to measure the systematics of isotopes in the lead region (Pb, Bi…

Nuclear and High Energy PhysicsIon beamNuclear physics[PHYS.NEXP]Physics [physics]/Nuclear Experiment [nucl-ex]01 natural sciences7. Clean energyISOLTRAPIonNuclear physicsIonization0103 physical sciencesPhysics::Atomic PhysicsLaser spectroscopy010306 general physicsSpectroscopyNuclear ExperimentInstrumentationHyperfine structureRresonance laser ionization010308 nuclear & particles physicsChemistryResonanceIon sourceIsotope shiftHyperfine structureAtomic physics
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The laser ion source and trap (LIST) – A highly selective ion source

2008

A combined structure consisting of a laser ion source and a linear Paul trap (LIST) has been designed to produce radioactive ion beams of high purity and optimal temporal and spacial brilliance at on-line isotope separator (ISOL) facilities. The functionality of the LIST was experimentally demonstrated in off-line tests using the RISIKO off-line mass separator together with an all solid state Ti:sapphire laser system at the University of Mainz. Two different ion trap designs were tested extracting the performance of these devices regarding ionization efficiency and selectivity as well as time structure and transverse emittance of the produced ion beam. The results of these measurements are …

Nuclear and High Energy PhysicsIon beambusiness.industryChemistryLaserIon gunIon trappingIon sourcelaw.inventionIon beam depositionlawPhysics::Accelerator PhysicsOptoelectronicsThermal emittancePhysics::Atomic PhysicsIon trapAtomic physicsbusinessInstrumentationNuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
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Ion traps — recent applications and developments

1991

Abstract Paul and Penning traps are now widely applied in chemistry and physics laboratories. They are used as storage devices, as tools for precision spectroscopy and metrology, and as mass spectrometers. Direct mass measurements of short-lived Rb, Sr, Cs, Ba, Fr and Ra isotopes were performed at the on-line mass separator ISOLDE at CERN, Geneva, by means of a tandem Penning trap system. The ions from ISOLDE are captured and cooled in a first trap and trasnferred to a second trap. Here the mass of the trapped ions is determined by measuring their cyclotron frequency. Resolving powers exceeding m/Δm (FWHM) = 106 could be achieved. Mass values of about 60 isotopes have been determined with a…

Nuclear and High Energy PhysicsIsotopeChemistryCyclotronPenning trapMass spectrometrylaw.inventionIonlawSelected ion monitoringIon trapDetectors and Experimental TechniquesAtomic physicsInstrumentationHybrid mass spectrometerNuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
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The REX-ISOLDE project

1998

Abstract REX-ISOLDE [1] is an experiment at ISOLDE/CERN with a twofold aim: (i) to demonstrate a novel efficient scheme for the acceleration of radioactive ions from the online mass separator ISOLDE to energies around the Coulomb barrier. (ii) to perform first nuclear physics experiments by studying the structure of the neutron-rich (N = 20, N = 28) nuclei by Coulomb excitation and neutron transfer reactions. An overview on the different components of the radioactive beam accelerator is given with special emphasis on the separation possibilities and ion number capabilities of the system.

Nuclear and High Energy PhysicsLarge Hadron ColliderChemistryCoulomb barrierCoulomb excitationPenning trapLinear particle acceleratorIsotope separationlaw.inventionIonNuclear physicslawPhysics::Accelerator PhysicsNeutronNuclear ExperimentInstrumentationNuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
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Towards higher accuracy with the ISOLTRAP mass spectrometer

1996

To now the masses of more than hundred unstable isotopes have been determined with the ISOLTRAP mass spectrometer installed at ISOLDE/CERN. Typically a resolving power of mΔm ≈ 1 × 106 was used and the mass determinations were assigned an accuracy of δmm ≈ 1 × 10−7. We show that with improvements to ISOLTRAP and refinements of the experimental technique an accuracy of δmm ≈ 3 × 10−8 can be obtained.

Nuclear and High Energy PhysicsLarge Hadron ColliderIsotope010308 nuclear & particles physicsChemistry[PHYS.NEXP] Physics [physics]/Nuclear Experiment [nucl-ex][PHYS.NEXP]Physics [physics]/Nuclear Experiment [nucl-ex]Penning trapMass spectrometry01 natural sciencesISOLTRAPAtomic massNuclear physics0103 physical sciencesAtomic physics010306 general physicsInstrumentation
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Nuclear physics with ion traps at ISOLDE: present and future

1993

Nuclear physics experiments with ion traps started at the on-line separator ISOLDE/CERN, Geneva, with the installation of the tandem Penning trap mass spectrometer ISOLTRAP. With this device the massM of a stored ion is determined by measuring its cyclotron frequency θc=(q/M)B in a magnetic fieldB. Mass measurements with a resolving powerR=θc/Δθc(FWHM)≈1×106 and accuracies of δM/M≈10−7 were performed on more than sixty unstable isotopes of the elements Rb, Sr, Cs, Ba, Fr, and Ra.

Nuclear and High Energy PhysicsLarge Hadron ColliderIsotopeChemistryCyclotronCondensed Matter PhysicsPenning trapMass spectrometryISOLTRAPAtomic and Molecular Physics and Opticslaw.inventionIonNuclear physicsFull width at half maximumlawPhysical and Theoretical ChemistryAtomic physicsHyperfine Interactions
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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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Development of a carbon-cluster ion source for JYFLTRAP

2008

Abstract A carbon-cluster ion source based on laser ablation and ionization of a carbon sample has been built and tested for the JYFLTRAP setup. In the present configuration the ion source is situated in the electrostatic switchyard in front of the radiofrequency (RFQ) cooler and buncher. In this position the beam quality of the carbon clusters injected into the Penning trap system is considerably improved by the RFQ. Moreover, the mass-dependence of the RFQ’s transmission can be used to some extent to suppress unwanted cluster sizes.

Nuclear and High Energy PhysicsLaser ablationchemistryIonizationCluster (physics)chemistry.chemical_elementLaser beam qualityAtomic physicsMass spectrometryPenning trapInstrumentationCarbonIon sourceNuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
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$Q$-value of the superallowed $\beta$ decay of 62Ga

2006

Masses of the radioactive isotopes 62Ga, 62Zn and 62Cu have been measured at the JYFLTRAP facility with a relative precision of better than 18 ppb. A Q_EC value of (9181.07 +- 0.54) keV for the superallowed decay of 62Ga is obtained from the measured cyclotron frequency ratios of 62Ga-62Zn, 62Ga-62Ni and 62Zn-62Ni ions. The resulting Ft-value supports the validity of the conserved vector current hypothesis (CVC). The mass excess values measured were (-51986.5 +-1.0) keV for 62Ga, (-61167.9 +- 0.9) keV for 62Zn and (-62787.2 +- 0.9) keV for 62Cu.

Nuclear and High Energy PhysicsMass excessQ valuePenning trapCyclotronFOS: Physical sciences27.50.+e; 23.40.-s; 24.80.+g; 21.10.Dr[PHYS.NEXP]Physics [physics]/Nuclear Experiment [nucl-ex]01 natural sciences7. Clean energyIonlaw.inventionNuclear physicslawDouble beta decayFt value0103 physical sciencesNuclear Experiment (nucl-ex)010306 general physicsNuclear ExperimentPhysicsRadionuclide010308 nuclear & particles physicsBeta decayQ-valueAtomic massAtomic mass
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