Search results for "Recoil separator"

showing 10 items of 41 documents

Towards saturation of the electron-capture delayed fission probability: The new isotopes $^{240}Es$ and $^{236}Bk$

2016

Abstract The new neutron-deficient nuclei 240 Es and 236 Bk were synthesised at the gas-filled recoil separator RITU. They were identified by their radioactive decay chains starting from 240 Es produced in the fusion–evaporation reaction 209 Bi( 34 S,3n) 240 Es. Half-lives of 6 ( 2 ) s and 22 − 6 + 13 s were obtained for 240 Es and 236 Bk, respectively. Two groups of α particles with energies E α = 8.19 ( 3 ) MeV and 8.09 ( 3 ) MeV were unambiguously assigned to 240 Es. Electron-capture delayed fission branches with probabilities of 0.16 ( 6 ) and 0.04 ( 2 ) were measured for 240 Es and 236 Bk, respectively. These new data show a continuation of the exponential increase of ECDF probabilitie…

Electron-capture delayed fissionNuclear and High Energy PhysicsElectron captureFissionFusion–evaporation reaction236[PHYS.NEXP]Physics [physics]/Nuclear Experiment [nucl-ex]236 Bk01 natural sciences7. Clean energyRecoil separatorNuclear physicsfusion-evaporation reactionsE236Bk240Es240 Es0103 physical sciencesddc:530010306 general physicsα decayisotopesPhysics240Isotopeta114Isotopes with mass 236–240010308 nuclear & particles physicslcsh:QC1-999Exponential functionBkmassAtomic physicsSaturation (chemistry)Fusion–evaporation reactionsα particleslcsh:PhysicsRadioactive decay
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Spectroscopic Tools Applied to Flerovium Decay Chains

2020

Abstract An upgraded TASISpec setup, with the addition of a veto DSSD and the new Compex detector-germanium array, has been employed with the gas-filled recoil separator TASCA at the GSI Helmholtzzentrum für Schwerionenforschung Darmstadt, to study flerovium (element 114) decay chains. The detector upgrades along with development of new analytical techniques have improved the sensitivity of the TASISpec setup for measuring α-photon coincidences. These improvements have been assessed with test reactions. The reaction 48Ca+206,207Pb was used for verification of experimental parameters such as transmission to implantation DSSD and target-segment to α-decay correlations. The reaction 48Ca+ nat …

Historyalpha decayspektroskopiatutkimuslaitteetchemistry.chemical_element01 natural sciencesRecoil separatorEducationNuclear physics0103 physical sciencesSubatomic Physicsddc:530Sensitivity (control systems)010306 general physicsPhysicsnuclear spectroscopy010308 nuclear & particles physicsDetector3. Good healthComputer Science ApplicationsFleroviumsuperheavy elementschemistryNuclear spectroscopyAlpha decayDecay chainDeconvolutionydinfysiikka
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Gas-filled recoil separator for studies of heavy elements

1995

Abstract A gas-filled recoil separator for the study of heavy elements has been constructed. The separator is of type QDQQ with the first, vertically focusing, quadrupole providing improved matching to the acceptance of the dipole magnet. The separator has been designed also for use in vacuum mode in which case a mass resolving power of ≈ 100 is estimated. The deflection angle is 25° and the radius of curvature is 1850 mm. Maximum beam rigidity is 2.2 T m. In the first experiments, new isotopes in the region Z = 85–90 have been synthesized.

Nuclear and High Energy Physics010308 nuclear & particles physicsChemistrySeparator (oil production)01 natural sciences7. Clean energyRecoil separatorDeflection angleNuclear physicsRigidity (electromagnetism)Dipole magnet0103 physical sciencesQuadrupole010306 general physicsInstrumentationNuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
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Recent applications of the JYFL gas-filled recoil separator

1997

Abstract The gas-filled recoil separator RITU at the Department of Physics, University of Jyvaskyla (JYFL) was constructed in 1992–1993, and the first experiments were performed in late 1993. RITU differs from other gas-filled separators by having a vertically focusing quadrupole magnet in front of the separating dipole for better matching with the dipole acceptance. New results from RITU include the discovery of 13 previously unpublished isotopes of At, Rn, Fr, Ra, Ac and Th, while experiments in the transuranium region have also been made. Illustrative examples from these studies together with results on background properties, efficiency of separation, and other performance data will be p…

Nuclear and High Energy Physics010308 nuclear & particles physicsChemistry[PHYS.NEXP]Physics [physics]/Nuclear Experiment [nucl-ex]7. Clean energy01 natural sciencesRecoil separatorNuclear physicsDipole0103 physical sciences010306 general physicsQuadrupole magnetInstrumentationTransuranium elementComputingMilieux_MISCELLANEOUS
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The design of a new gas-filled separator at JYFL

2003

Abstract A new gas-filled recoil separator, intended mainly for the study of reaction products in mass region of 100–200 produced in symmetric or nearly symmetric reactions, is under design at the Department of Physics in the University of Jyvaskyla. The separator will be of the type DQQ where a horizontally focusing dipole (D) is followed by a quadrupole (Q) doublet. The bending radius of the dipole magnet will be 1850 mm and the bending angle 50°.

Nuclear and High Energy PhysicsDipoleDipole magnetChemistryQuadrupoleBend radiusAnalytical chemistrySeparator (oil production)Physics::Atomic PhysicsAtomic physicsNuclear ExperimentInstrumentationRecoil separatorNuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
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The MARA-LEB ion transport system

2020

Abstract A low-energy branch is under development for the MARA vacuum-mode recoil separator at the Accelerator Laboratory of the University of Jyvaskyla. This development will allow for the study of proton-rich nuclei through laser ionisation spectroscopy and mass measurements. After stopping and extraction from a buffer gas cell, the ions of interest will be accelerated and transported to dedicated experimental setups by an ion transport system consisting of several focusing, accelerating and mass-separating elements. This article presents the current design and simulations for the ion transport.

Nuclear and High Energy PhysicsMaterials scienceBuffer gasLaser01 natural sciencesRecoil separatorlaw.inventionIonNuclear physicslawIonization0103 physical sciencesCurrent (fluid)Nuclear Experiment010306 general physicsSpectroscopy010303 astronomy & astrophysicsInstrumentationIon transporterNuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
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The new vacuum-mode recoil separator MARA at JYFL

2008

Abstract A new vacuum-mode recoil separator MARA (Mass Analysing Recoil Apparatus) is under design and construction at the Department of Physics in the University of Jyvaskyla. The separator is intended to separate reaction products from the primary beam in mass region below A = 150 . The ion-optical configuration of the separator will be QQQDEDM, where a magnetic quadrupole (Q) triplet is followed by an electrostatic deflector (DE) and a magnetic dipole (DM). The total length of MARA will be less than 7.0 m and the first order resolving power more than 250 for a beam spot size of 2 mm. In this contribution the main properties of MARA are given and results from simulations are shown.

Nuclear physicsNuclear and High Energy PhysicsRecoilChemistrySeparator (oil production)Quadrupole magnetFirst orderInstrumentationMagnetic dipoleRecoil separatorNuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
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Ca48+Bk249Fusion Reaction Leading to ElementZ=117: Long-Livedα-DecayingDb270and Discovery ofLr266

2014

The superheavy element with atomic number Z=117 was produced as an evaporation residue in the 48Ca+249Bk fusion reaction at the gas-filled recoil separator TASCA at GSI Darmstadt, Germany. The radioactive decay of evaporation residues and their α-decay products was studied using a detection setup that allowed measuring decays of single atomic nuclei with half-lives between sub-μs and a few days. Two decay chains comprising seven α decays and a spontaneous fission each were identified and are assigned to the isotope 294-117 and its decay products. A hitherto unknown α-decay branch in 270Db (Z=105) was observed, which populated the new isotope 266Lr (Z=103). The identification of the long-liv…

Nuclear physicsPhysicsIsotopeAtomic nucleusGeneral Physics and AstronomyNuclear fusionDecay chainAtomic numberAtomic physicsRadioactive decayRecoil separatorSpontaneous fissionPhysical Review Letters
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Microsecond isomers in 187Tl and 188Pb

2000

Lifetime measurements of states in nuclei with A=187 and 188 have been performed, using reactions between 155Gd and 36Ar and following the transport of evaporation residues to the focal plane of a gas-filled recoil separator. In a separate experiment using the 159Tb(32S, 4n) reaction the γ-decay of isomeric levels in 187Tl has been studied using delayed γ-γ coincidence measurements. From observation of their subsequent γ decay, the mean lifetimes were measured to be 1000 ± 55 ns and 1600 ± 100 ns. Although it was not possible to characterize the isomers completely, they are proposed as candidates for one-proton, two-neutron excitations. In the course of this study, the decay of an isomer in…

Nuclear physicsPhysicsNuclear and High Energy PhysicsMicrosecondHadronEvaporationNuclear fusionAtomic physicsCoincidenceRecoil separatorThe European Physical Journal A
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Probing shapes of very neutron deficientZ≈82 nuclei using the recoil-decay tagging method

1997

The JYFL gas-filled recoil separator, RITU, combined with efficient Ge-detector arrays has been employed in in-beam γ-ray studies of very neutron-deficient nuclei close to theZ=82 shell. Gamma-rays from nuclei produced at the few μb cross-section level have been detected.

Nuclear physicsPhysicsNuclear and High Energy PhysicsRecoilAstrophysics::High Energy Astrophysical PhenomenaNuclear TheoryHadronShell (structure)General Physics and AstronomyNeutronAtomic physicsNuclear ExperimentRecoil separatorActa Physica Hungarica A) Heavy Ion Physics
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