Search results for "BUFFER GAS"

showing 7 items of 47 documents

The cryogenic gas stopping cell of SHIPTRAP

2014

The overall efficiency of the Penning-trap mass spectrometer SHIPTRAP at GSI Darmstadt, employed for high-precision mass measurements of exotic nuclei in the mass region above fermium, is presently mostly limited by the stopping and extraction of fusion-evaporation products in the SHIPTRAP gas cell. To overcome this limitation a second-generation gas cell with increased stopping volume was designed. In addition, its operation at cryogenic temperatures leads to a higher gas density at a given pressure and an improved cleanliness of the helium buffer gas. Here, the results of experiments with a 219Rn recoil ion source are presented. An extraction efficiency of 74(3)% was obtained, a significa…

Speichertechnik - Abteilung BlaumNuclear and High Energy PhysicsChemistryFermiumBuffer gasAnalytical chemistrychemistry.chemical_elementMass spectrometryIon sourceIonRecoilVolume (thermodynamics)InstrumentationHeliumNuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
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The performance of the cryogenic buffer-gas stopping cell of SHIPTRAP

2018

Direct high-precision mass spectrometry of the heaviest elements with SHIPTRAP, at GSI in Darmstadt, Germany, requires high efficiency to deal with the low production rates of such exotic nuclides. A second-generation gas stopping cell, operating at cryogenic temperatures, was developed and recently integrated into the relocated system to boost the overall efficiency. Offline measurements using 223Ra and 225Ac recoil-ion sources placed inside the gas volume were performed to characterize the gas stopping cell with respect to purity and extraction efficiency. In addition, a first online test using the fusion-evaporation residue 254No was performed, resulting in a combined stopping and extrac…

Speichertechnik - Abteilung BlaumNuclear and High Energy PhysicsMaterials scienceDIRECT MASS MEASUREMENTSProtonBuffer gaschemistry.chemical_elementPenning trapsMass spectrometry7. Clean energy01 natural sciencesFusion-evaporation reaction productsNuclear physicsIonization0103 physical sciencesCalibrationStopping and extraction efficiencyNuclide010306 general physicsInstrumentationCALIBRATION[PHYS]Physics [physics]nobeliumSPECTROSCOPYMass spectrometry010308 nuclear & particles physicsTransfermium elementsCryogenic gas stopping cellExtraction timeHEAVIEST ELEMENTSchemistryIONIZATIONNobeliumOrder of magnitude
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Status of the SHIPTRAP Project: A Capture and Storage Facility for Heavy Radionuclides from SHIP

2001

The ion trap facility SHIPTRAP is being set up to deliver very clean and cool beams of singly-charged recoil ions produced at the SHIP velocity filter at GSI Darmstadt. SHIPTRAP consists of a gas cell for stopping and thermalizing high-energy recoil ions from SHIP, an rf ion guide for extraction of the ions from the gas cell, a linear rf trap for accumulation and bunching of the ions, and a Penning trap for isobaric purification. The progress in testing the rf ion guide is reported. A transmission of about 93(5)% was achieved.

Trap (computing)Nuclear physicsRadionuclideRecoilPhysics::Plasma PhysicsChemistryBuffer gasPhysics::Accelerator PhysicsPhysics::Atomic PhysicsIon trapNuclear ExperimentPenning trapIon
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Space Charge Effects in a Gas Filled Penning Trap

2001

Mass selective buffer gas cooling is a technique used for ions that are stored in a Penning trap. The technique can be applied to all elements and the mass resolving power achieved has proven to be sufficient to resolve isobars. When not only a few but 106 and more ions are stored at the same time, space charge starts to play a dominant role for the spatial distribution. In addition, the observed cyclotron frequency is shifted. This work investigates these effects by numerical calculations.

Work (thermodynamics)ChemistrylawBuffer gasCyclotronIsobarIon trapAtomic physicsPenning trapSpace chargeIonlaw.invention
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Impact of buffer gas quenching on the $^1S_0$ $\to$ $^1P_1$ ground-state atomic transition in nobelium

2017

International audience; Using the sensitive Radiation Detected Resonance Ionization Spectroscopy (RADRIS) techniquean optical transition in neutral nobelium (No, Z = 102) was identified. A remnant signal when delaying the ionizing laser indicated the influence of a strong buffer gas induced de-excitation of the optically populated level. A subsequent investigation of the chemical homologue, ytterbium (Yb, Z = 70), enabled a detailed study of the atomic levels involved in this process, leading to the development of a rate equation model. This paves the way for characterizing resonance ionization spectroscopy (RIS) schemes used in the studyof nobelium and beyond, where atomic properties are c…

YtterbiumQuenching (fluorescence)Materials scienceBuffer gaschemistry.chemical_elementRate equation[PHYS.NEXP]Physics [physics]/Nuclear Experiment [nucl-ex]01 natural sciencesAtomic and Molecular Physics and OpticsSpectral line010305 fluids & plasmaschemistry0103 physical sciencesAtomic Physicsddc:530NobeliumPhysics::Atomic PhysicsAtomic physics010306 general physicsGround stateSpectroscopy
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Lifetime measurements of the 3D3/2 and 3D5/2 metastable states in CaII

1993

The lifetime of the metastable 3D3/2 and 3D5/2 states of Ca+ ions is determined in a r.f. ion trap by laser excitation of this levels and subsequent time delayed probing of the state population by a second laser. In a buffer gas atmosphere of about 10−5−10−6 mbar of He we observe quenching to the ground state and strong finestructure mixing of the two D-states. This mixing allowes only the determination of the combined lifetime. Our result of τ(3D)=1.24(39) s is in good agreement with theoretical calculations.

education.field_of_studyMaterials scienceBuffer gasPopulationLaserAtomic and Molecular Physics and OpticsIonlaw.inventionlawExcited stateMetastabilityIon trapAtomic physicsGround stateeducationZeitschrift f�r Physik D Atoms, Molecules and Clusters
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Status and development of the MARA low-energy branch

2018

The MARA Low-Energy Branch is under development at the Accelerator Laboratory of the University of Jyvaskylä. The facility will be employed for laser ionisation and spectroscopy studies and for mass measurements of nuclei close to the proton drip line. This article presents an updated status of the ongoing development of the different parts of this facility, including the buffer gas cell, the ion transport system, the laser system and the detector stations. peerReviewed

massaspektrometriaion transport systemta114Nuclear engineeringNuclear TheoryBuffer gasDetectortutkimuslaitteetbuffer gas cellLaserlaw.inventionProton (rocket family)Low energylawlow-energyPhysics::Accelerator PhysicsEnvironmental scienceNuclear Experimentydinfysiikkadetector stationslaser system
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