Search results for "Collider"

showing 10 items of 1690 documents

The Crystal Barrel spectrometer at LEAR

1992

The crystal Barrel spectrometer used at LEAR, CERN to study the products of pd annihilations is described. A 1380 element array of Csl crystals measures photons from the decay of π0, η, η′ and ω mesons. A segmented drift chamber in a 1.5T magnetic field is used to identify and measure charged particles. A fast on-line trigger on charged and neutral multiplicities and on the invariant mass of secondary particles is available. The performance of the detector is discussed.

PhysicsNuclear and High Energy PhysicsPhotonLarge Hadron ColliderSpectrometerMesonPhysics::Instrumentation and Detectors010308 nuclear & particles physics01 natural sciencesCharged particleMagnetic fieldNuclear physicsCrystal0103 physical sciencesInvariant mass[PHYS.PHYS.PHYS-INS-DET]Physics [physics]/Physics [physics]/Instrumentation and Detectors [physics.ins-det]Detectors and Experimental Techniques010306 general physicsInstrumentation
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Performance of production modules of the Belle II pixel detector in a high-energy particle beam

2021

The Belle II experiment at the Super B factory SuperKEKB, an asymmetric $e^+e^-$ collider located in Tsukuba, Japan, is tailored to perform precision B physics measurements. The centre of mass energy of the collisions is equal to the rest mass of the $\Upsilon(4S)$ resonance of $m_{\Upsilon(4S)} = 10.58\,\rm GeV$. A high vertex resolution is essential for measuring the decay vertices of B mesons. Typical momenta of the decay products are ranging from a few tens of MeV to a few GeV and multiple scattering has a significant impact on the vertex resolution. The VerteX Detector (VXD) for Belle II is therefore designed to have as little material as possible inside the acceptance region. Especial…

PhysicsNuclear and High Energy PhysicsPhysics - Instrumentation and Detectors010308 nuclear & particles physicsDetectorFOS: Physical sciencesDESYInstrumentation and Detectors (physics.ins-det)01 natural sciences7. Clean energyCharge sharinglaw.inventionB-factoryHigh Energy Physics - ExperimentNuclear physicsHigh Energy Physics - Experiment (hep-ex)law0103 physical sciencesInvariant massHigh Energy Physics::Experiment010306 general physicsColliderInstrumentationImage resolutionBeam (structure)
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Particle Identification with DIRCs at PANDA

2019

The DIRC technology (Detection of Internally Reflected Cherenkov light) offers an excellent possibility to minimize the form factor of Cherenkov detectors in hermetic high energy detectors. The PANDA experiment at FAIR in Germany will combine a barrel-shaped DIRC with a disc-shaped DIRC to cover an angular range of 5 to 140 degrees. Particle identification for pions and kaons with a separation power of 3 standard deviations or more will be provided for momenta between 0.5 GeV/c and 3.5 GeV/c in the barrel region and up to 4 GeV/c in the forward region. Even though the concept is simple, the design and construction of a DIRC is challenging. High precision optics and mechanics are required to…

PhysicsNuclear and High Energy PhysicsPhysics - Instrumentation and DetectorsLarge Hadron ColliderPhotonCherenkov detectorbusiness.industryPhysics::Instrumentation and DetectorsDetectorFOS: Physical sciencesInstrumentation and Detectors (physics.ins-det)Particle identificationlaw.inventionOpticslawDetection of internally reflected Cherenkov lightHigh Energy Physics::ExperimentParticle beambusinessInstrumentationCherenkov radiation
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Commissioning and performance of the Belle II pixel detector

2021

Belle-II DEPFET and PXD Collaboration: et al.

PhysicsNuclear and High Energy PhysicsPixel010308 nuclear & particles physicsPhysics beyond the Standard Model01 natural sciencesNoise (electronics)law.inventionData setNuclear physicsPower consumptionlaw0103 physical sciencesField-effect transistorColliderInstrumentationPixel detector
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Point-to-point readout for the ALICE EMCal detector

2014

Abstract It is anticipated that the LHC will deliver Pb+Pb collisions at a minimum bias interaction rate of about 50 kHz after the second long shutdown of the LHC in 2018. This will be roughly two orders of magnitude greater than the current data recording rate capability of the ALICE experiment. Therefore a major upgrade of the ALICE detector is planned for the next shutdown to enable ALICE to record data at the full Pb+Pb minimum bias interaction rate delivered by the LHC. A new point-to-point readout system for the electromagnetic calorimeter (EMCal) of ALICE has been developed, to replace the legacy readout bus, that essentially accomplishes this goal, and is being installed during the …

PhysicsNuclear and High Energy PhysicsPoint-to-pointALICE calorimeterLarge Hadron Colliderta114Physics::Instrumentation and Detectorsbusiness.industryDetectorElectrical engineeringFront end electronicsEvent readout rateMinimum biasElectromagnetic calorimeterUpgradeScalable Readout UnitGTL busALICE (propellant)Detectors and Experimental TechniquesNuclear ExperimentbusinessPoint-to-point linksInstrumentation
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Measurement of the proton form factor by studyinge+e−→pp¯

2015

Using data samples collected with the BESIII detector at the BEPCII collider, we measure the Born cross section of e(+)e(-) -> p (p) over tilde at 12 center-of-mass energies from 2232.4 to 3671.0 MeV. The corresponding effective electromagnetic form factor of the proton is deduced under the assumption that the electric and magnetic form factors are equal (vertical bar G(E)vertical bar = vertical bar G(M)vertical bar). In addition, the ratio of electric to magnetic form factors, vertical bar G(E)/G(M)vertical bar, and vertical bar G(M)vertical bar are extracted by fitting the polar angle distribution of the proton for the data samples with larger statistics, namely at root s = 2232.4 and 240…

PhysicsNuclear and High Energy PhysicsProton010308 nuclear & particles physicsElectron–positron annihilationHigh Energy Physics::PhenomenologyForm factor (quantum field theory)01 natural sciences7. Clean energyVertical barlaw.inventionNuclear physicsCross section (physics)Distribution (mathematics)law0103 physical sciencesHigh Energy Physics::Experiment010306 general physicsNucleonColliderPhysical Review D
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Nuclear matter effects onJ/ψproduction in asymmetric Cu + Au collisions atsNN=200GeV

2014

We report on J/psi production from asymmetric Cu + Au heavy-ion collisions at root S-NN = 200 GeV at the Relativistic Heavy Ion Collider at both forward (Cu-going direction) and backward (Au-going direction) rapidities. The nuclear modification of J/psi yields in Cu + Au collisions in the Au-going direction is found to be comparable to that inAu + Au collisions when plotted as a function of the number of participating nucleons. In the Cu-going direction, J/psi production shows a stronger suppression. This difference is comparable in magnitude and has the same sign as the difference expected from shadowing effects due to stronger low-x gluon suppression in the larger Au nucleus.

PhysicsNuclear and High Energy PhysicsQuantitative Biology::Neurons and Cognition010308 nuclear & particles physicsNuclear TheoryNuclear matter01 natural sciences7. Clean energyGluonNuclear physicsmedicine.anatomical_structure0103 physical sciencesmedicineEnergy densityHigh Energy Physics::ExperimentAngular dependenceAtomic physicsNuclear Experiment010306 general physicsNucleonRelativistic Heavy Ion ColliderNucleusPhysical Review C
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Production ofωmesons inp+p,d+ Au, Cu + Cu, and Au + Au collisions atsNN=200GeV

2011

The PHENIX experiment at the Relativistic Heavy Ion Collider has measured omega meson production via leptonic and hadronic decay channels in p + p, d + Au, Cu+ Cu, and Au + Au collisions at root s(NN) = 200 GeV. The invariant transverse momentum spectra measured in different decay modes give consistent results. Measurements in the hadronic decay channel in Cu Cu and Au + Au collisions show that. production has a suppression pattern at high transverse momentum, similar to that of pi(0) and eta in central collisions, but no suppression is observed in peripheral collisions. The nuclear modification factors, R-AA, are consistent in Cu + Cu and Au + Au collisions at similar numbers of participan…

PhysicsNuclear and High Energy PhysicsQuantitative Biology::Neurons and CognitionMeson010308 nuclear & particles physicsNuclear Theorychemistry.chemical_element01 natural sciencesOmegaCopperSpectral lineNuclear physicsDeuteriumchemistry0103 physical sciencesTransverse momentumHigh Energy Physics::ExperimentAtomic physicsNuclear Experiment010306 general physicsNucleonRelativistic Heavy Ion ColliderPhysical Review C
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ISOLTRAP mass measurements of exotic nuclides at

2005

The ISOLTRAP experiment at the ISOLDE facility at CERN is a Penning trap mass spectrometer for on-line mass measurements on short-lived radionuclides. It allows the determination of atomic masses of exotic nuclides with a relative uncertainty of only 10−8. The results provide important information for, e.g., weak interaction studies and nuclear models. Recent ISOLTRAP investigations and applications of high-precision mass measurements are discussed.

PhysicsNuclear and High Energy PhysicsRadionuclideLarge Hadron Collider010308 nuclear & particles physicsWeak interactionPenning trapMass spectrometry01 natural sciencesISOLTRAPAtomic massNuclear physics0103 physical sciencesNuclideNuclear Experiment010306 general physicsNuclear Physics A
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Isoltrap pins down masses of exotic nuclides

2005

The mass of radionuclides contribute to a variety of fundamental studies including tests of the weak interaction and the Standard Model. The limits of mass measurements of exotic nuclides have been extended considerably by the Penning-trap mass spectrometer ISOLTRAP at the ISOLDE facility at CERN. Recent ISOLTRAP measurements are summarized and current technical improvements are outlined.

PhysicsNuclear and High Energy PhysicsRadionuclideLarge Hadron Collider010308 nuclear & particles physics[PHYS.NEXP]Physics [physics]/Nuclear Experiment [nucl-ex]Mass spectrometry01 natural sciencesISOLTRAPStandard ModelNuclear physics0103 physical sciencesPhysics::Accelerator PhysicsNuclide010306 general physicsNuclear Experiment
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