Search results for "beam"

showing 10 items of 2126 documents

The upgraded ISOLDE yield database – A new tool to predict beam intensities

2020

At the CERN-ISOLDE facility a variety of radioactive ion beams are available to users of the facility. The number of extractable isotopes estimated from yield database data exceeds 1000 and is still increasing. Due to high demand and scarcity of available beam time, precise experiment planning is required. The yield database stores information about radioactive beam yields and the combination of target material and ion source needed to extract a certain beam along with their respective operating conditions. It allows to investigate the feasibility of an experiment and the estimation of required beamtime. With the increasing demand for ever more exotic beams, needs arise to extend the functi…

Radioactive ion beamsNuclear and High Energy PhysicsYieldsComputer sciencecomputer.software_genre114 Physical sciences01 natural sciencesISOLDEDatabaseFLUKACERN0103 physical sciencesddc:530Production Yield010306 general physicsInstrumentationLarge Hadron ColliderDatabase010308 nuclear & particles physicsIn-target productionYield predictionCross sectionsYield (chemistry)ABRABLAIONIZATIONRelease efficiencycomputerRadioactive beamBeam (structure)Radioactive beamsNuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
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Towards commissioning the new IGISOL-4 facility

2013

Abstract The Ion Guide Isotope Separator On-Line facility at the Accelerator Laboratory of the University of Jyvaskyla is currently being re-commissioned as IGISOL-4 in a new experimental hall. Access to intense beams of protons and deuterons from a new MCC30/15 cyclotron, with continued possibility to deliver heavy-ion beams from the K = 130 MeV cyclotron, offers extensive opportunities for long periods of fundamental experimental research, developments and applications. A new layout of beam lines with a considerable increase in floor space offers new modes of operation at the facility, as well as a possibility to incorporate more complex detector setups. We present a general overview of I…

Radioactive ion beamsNuclear and High Energy Physicsta114Project commissioningComputer scienceNuclear engineeringDetectorCyclotronExperimental researchlaw.inventionNuclear physicslawNeutronInstrumentationBeam (structure)Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
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Twin GEM-TPC prototype (HGB4) beam test at GSI and Jyväskylä : a development for the Super-FRS at FAIR

2017

The FAIR[1] facility is an international accelerator centre for research with ion and antiproton beams. It is being built at Darmstadt, Germany as an extension to the current GSI research institute. One major part of the facility will be the Super-FRS[2] separator, which will be include in phase one of the project construction. The NUSTAR experiments will benefit from the Super-FRS, which will deliver an unprecedented range of radioactive ion beams (RIB). These experiments will use beams of different energies and characteristics in three different branches; the high-energy which utilizes the RIB at relativistic energies 300-1500 MeV/u as created in the production process, the low-energy bra…

Radioactive ion beamsPhysics - Instrumentation and DetectorsPhysics::Instrumentation and DetectorsSeparator (oil production)hiukkaskiihdyttimet01 natural sciences7. Clean energy114 Physical sciencesParticle identificationNuclear physics0103 physical sciencesElectronicsNuclear ExperimentdetectorsPhysicsta114010308 nuclear & particles physicsProjectileI.2.7Detectorparticle acceleratorsilmaisimetAntiprotonPhysics::Accelerator PhysicsF.2.2Beam (structure)
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The SPEDE Spectrometer: Combined In-Beam γ-ray and Conversion Electron Spectroscopy with Radioactive Ion Beams

2015

The SPEDE spectrometer [1] aims to combine a silicon detector, for the detection of electrons, with the MINIBALL γ-ray detection array for in-beam studies employing radioactive ion beams at the HIE-ISOLDE facility at CERN. The setup will be primarily used for octupole collectivity [2] and shape coexistence studies [3, 4] in Coulomb excitation experiments. In the shape coexistence cases the transitions between states of the same spin and parity have enhanced E0 strength [5]. Additionally the 0→0 transitions, typically present in nuclei exhibiting shape coexistence [6], can only occur via E0 transitions, i.e. via internal conversion electron emission.

Radioactive ion beamsPhysicsLarge Hadron ColliderSpectrometerta114Physics::Instrumentation and DetectorsParity (physics)Coulomb excitationElectronElectron spectroscopyPhysics::Accelerator PhysicsSilicon detectorAtomic physicsconversion electron spectrometersNuclear Experiment
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Beam cooler for low-energy radioactive ions

2001

Abstract An ion beam cooler for mass-separated radioactive ion beams has been developed and tested at the IGISOL-type mass separator facility. Technical description and characteristic properties are presented. An energy spread below 1 eV and transmission efficiency of 60% were measured.

Radioactive ion beamsPhysicsNuclear and High Energy PhysicsIon beamSeparator (oil production)Ion gunIonIon beam depositionLow energyPhysics::Accelerator PhysicsAtomic physicsNuclear ExperimentInstrumentationBeam (structure)Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment
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A sextupole ion beam guide to improve the efficiency and beam quality at IGISOL

2008

The laser ion source project at the IGISOL facility, Jyvaskyla, has motivated the development and construction of an rf sextupole ion beam guide (SPIG) to replace the original skimmer electrode. The SPIG has been tested both off-line and on-line in proton-induced fission, light-ion and heavy-ion induced fusion-evaporation reactions and, in each case, has been directly compared to the skimmer system. For both fission and light-ion induced fusion, the SPIG has improved the mass-separated ion yields by a factor of typically 4 to 8. Correspondingly, the transmission efficiency of both systems has been studied in simulations with and without space charge effects. The transport capacity of the SP…

Radioactive ion beamsPhysicsNuclear and High Energy PhysicsIon beambusiness.industryFOS: Physical sciencesOpticsPhysics::Plasma PhysicsLaser beam qualityNuclear Experiment (nucl-ex)businessNuclear ExperimentInstrumentationNuclear Experiment
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End-to-end tests using alanine dosimetry in scanned proton beams

2018

This paper describes end-to-end test procedures as the last fundamental step of medical commissioning before starting clinical operation of the MedAustron synchrotron-based pencil beam scanning (PBS) therapy facility with protons. One in-house homogeneous phantom and two anthropomorphic heterogeneous (head and pelvis) phantoms were used for end-to-end tests at MedAustron. The phantoms were equipped with alanine detectors, radiochromic films and ionization chambers. The correction for the 'quenching' effect of alanine pellets was implemented in the Monte Carlo platform of the evaluation version of RayStation TPS. During the end-to-end tests, the phantoms were transferred through the workflow…

Radiology Nuclear Medicine and ImagingMaterials sciencePelviMonte Carlo methodanthropomorphic phantomauditRadiation DosageImaging phantom030218 nuclear medicine & medical imaginglaw.inventionPelvisSynchrotron03 medical and health sciences0302 clinical medicinelawIonizationend to end testDosimetryHumansPencil-beam scanningRadiometryAlaninedosimetryRadiological and Ultrasound TechnologyPhantoms ImagingRadiotherapy Planning Computer-Assistedequipment and suppliesSynchrotron030220 oncology & carcinogenesisIonization chamberProtonProtonsHeadMonte Carlo MethodBeam (structure)SynchrotronsBiomedical engineeringHuman
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Broad beam transmission curves for new radionuclides in brachytherapy

2007

Radionuclidemedicine.medical_specialtyOncologybusiness.industryNuclear engineeringmedicine.medical_treatmentBrachytherapyMedicineRadiology Nuclear Medicine and imagingMedical physicsBeam transmissionbusinessBrachytherapy
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Spontaneous core–shell elemental distribution in In-rich In(x)Ga1-xN nanowires grown by molecular beam epitaxy.

2014

International audience; The elemental distribution of self-organized In-rich InxGa1-xN nanowires grown by plasma-assisted molecular beam epitaxy has been investigated using three different techniques with spatial resolution on the nanoscale. Two-dimensional images and elemental profiles of single nanowires obtained by x-ray fluorescence and energy-dispersive x-ray spectroscopy, respectively, have revealed a radial gradient in the alloy composition of each individual nanowire. The spectral selectivity of resonant Raman scattering has been used to enhance the signal from very small volumes with different elemental composition within single nanowires. The combination of the three techniques ha…

Raman scatteringMaterials scienceNanostructureAnalytical chemistryNanowireBioengineering02 engineering and technologyEpitaxy01 natural sciencesMolecular physicssymbols.namesakeCondensed Matter::Materials ScienceEDXalloy0103 physical sciencesGeneral Materials ScienceElectrical and Electronic EngineeringSpectroscopy010302 applied physics[PHYS]Physics [physics]X-ray spectroscopyx-ray fluorescenceMechanical EngineeringHeterojunctionGeneral Chemistry021001 nanoscience & nanotechnologyMechanics of Materialsnanowiresymbols0210 nano-technologyRaman scatteringMolecular beam epitaxyNanotechnology
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External-ion accumulation in a Penning trap with quadrupole excitation assisted buffer gas cooling

1994

Abstract A pulsed ion beam from an external source is injected into a Penning trap and accumulated by repeatedly lowering during ion capture to prevent the ions already captured from escaping. For the same reason the newly captured ions have to be cooled, which achieved by buffer gas collisions. To prevent radial on loss, the ions are exposed to azimuthal quadrupole excitation. By choosing the appropriate frequency (range) this method (selective quadrupole excitation assisted capture and centering (SQUEACE) allows a mass selection during the capture process and leads to a centering of those ions in the Penning trap. The multiple ion bunch capture results in a significant improvement in sign…

Range (particle radiation)Ion beamPhysics::Plasma PhysicsChemistryBuffer gasQuadrupolePhysics::Atomic PhysicsIon trapAtomic physicsPenning trapSpectroscopyExcitationIonInternational Journal of Mass Spectrometry and Ion Processes
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