Search results for " clusters"

showing 10 items of 1091 documents

Preparing isomerically pure beams of short-lived nuclei at JYFLTRAP

2008

A new procedure to prepare isomerically clean samples of ions with a mass resolving power of more than 100,000 has been developed at the JYFLTRAP tandem Penning trap system. The method utilises a dipolar rf-excitation of the ion motion with separated oscillatory fields in the precision trap. During a subsequent retransfer to the purification trap, the contaminants are rejected and as a consequence, the remaining bunch is isomerically cleaned. This newly-developed method is suitable for very high-resolution cleaning and is at least a factor of five faster than the methods used so far in Penning trap mass spectrometry.

Condensed Matter::Quantum GasesNuclear and High Energy PhysicsTandemChemistryAnalytical chemistryFOS: Physical sciencesMass spectrometryPenning trapIonTrap (computing)Physics::Atomic and Molecular ClustersPhysics::Atomic PhysicsAtomic physicsNuclear Experiment (nucl-ex)Nuclear ExperimentInstrumentationNuclear Experiment
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Antihydrogen production within a Penning-Ioffe trap.

2008

Slow antihydrogen (H) is produced within a Penning trap that is located within a quadrupole Ioffe trap, the latter intended to ultimately confine extremely cold, ground-state H[over ] atoms. Observed H[over ] atoms in this configuration resolve a debate about whether positrons and antiprotons can be brought together to form atoms within the divergent magnetic fields of a quadrupole Ioffe trap. The number of detected H atoms actually increases when a 400 mK Ioffe trap is turned on.

Condensed Matter::Quantum GasesPhysicsAntiparticleGeneral Physics and AstronomyPenning trapTrap (computing)Nuclear physicsAntiprotonAntimatterQuadrupolePhysics::Atomic and Molecular ClustersPhysics::Atomic PhysicsIon trapAtomic physicsAntihydrogenPhysical review letters
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Antiproton confinement in a Penning-Ioffe trap for antihydrogen.

2007

Antiprotons ((p) over bar) remain confined in a Penning trap, in sufficient numbers to form antihydrogen ((H) over bar) atoms via charge exchange, when the radial field of a quadrupole Ioffe trap is added. This first demonstration with (p) over bar suggests that quadrupole Ioffe traps can be superimposed upon (p) over bar and e(+) traps to attempt the capture of (H) over bar atoms as they form, contrary to conclusions of previous analyses.

Condensed Matter::Quantum GasesPhysicsAntiparticleHigh Energy Physics::PhenomenologyGeneral Physics and AstronomyPenning trapJNuclear physicsAntiprotonAntimatterQuadrupoleddc:550Physics::Atomic and Molecular ClustersHigh Energy Physics::ExperimentPhysics::Atomic PhysicsIon trapAtomic physicsQuadrupole ion trapAntihydrogenPhysical review letters
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Competition of Dzyaloshinskii-Moriya and Higher-Order Exchange Interactions in Rh/Fe Atomic Bilayers on Ir(111)

2018

Using spin-polarized scanning tunneling microscopy and density functional theory we demonstrate the occurrence of a novel type of noncollinear spin structure in $\mathrm{Rh}/\mathrm{Fe}$ atomic bilayers on Ir(111). We find that higher-order exchange interactions depend sensitively on the stacking sequence. For fcc-$\mathrm{Rh}/\mathrm{Fe}/\mathrm{Ir}(111)$, frustrated exchange interactions are dominant and lead to the formation of a spin spiral ground state with a period of about 1.5 nm. For hcp-$\mathrm{Rh}/\mathrm{Fe}/\mathrm{Ir}(111)$, higher-order exchange interactions favor an up-up-down-down ($\ensuremath{\uparrow}\ensuremath{\uparrow}\ensuremath{\downarrow}\ensuremath{\downarrow}$) s…

Condensed Matter::Quantum GasesPhysicsCondensed matter physicsMagnetic momentStackingGeneral Physics and Astronomy02 engineering and technologySpin structureType (model theory)021001 nanoscience & nanotechnology01 natural scienceslaw.inventionlaw0103 physical sciencesPhysics::Atomic and Molecular ClustersCondensed Matter::Strongly Correlated ElectronsDensity functional theoryScanning tunneling microscope010306 general physics0210 nano-technologySpin (physics)Ground statePhysical Review Letters
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Formation, Detection and Trapping of Photoassociated Ultracold KRb Molecules

2005

Ultracold ground-state KRb molecules are formed by photoassociation and detected by resonant two-photon ionization. We have assigned both the photoassociation spectrum and the detection laser spectrum, and we have demonstrated magnetic trapping of triplet KRb

Condensed Matter::Quantum GasesPhysicsDye laserCondensed Matter::OtherTrappingLaserlaw.inventionlawIonizationPhysics::Atomic and Molecular ClustersMoleculePhysics::Atomic PhysicsAtomic physicsTriplet state2005 Quantum Electronics and Laser Science Conference
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Theory of warm ionized gases: Equation of state and kinetic Schottky anomaly

2013

Based on accurate Lennard-Jones type interaction potentials, we derive a closed set of state equations for the description of warm atomic gases in the presence of ionization processes. The specific heat is predicted to exhibit peaks in correspondence to single and multiple ionizations. Such kinetic analogue in atomic gases of the Schottky anomaly in solids is enhanced at intermediate and low atomic densities. The case of adiabatic compression of noble gases is analyzed in detail and the implications on sonoluminescence are discussed. In particular, the predicted plasma electron density in a sonoluminescent bubble turns out to be in good agreement with the value measured in recent experiment…

Condensed Matter::Quantum GasesPhysicsEquation of stateBubbleFOS: Physical sciencesKinetic energy01 natural sciences7. Clean energyHeat capacityPhysics - Plasma Physicssingle-bubble sonoluminescence ; plasma ; cavitationCondensed Matter - Other Condensed MatterPlasma Physics (physics.plasm-ph)SonoluminescenceIonization0103 physical sciencesPhysics::Atomic and Molecular ClustersAtomic physics010306 general physicsAdiabatic process010303 astronomy & astrophysicsSchottky anomalyOther Condensed Matter (cond-mat.other)Physical Review E
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Trapping of ultracold atoms in a hollow-core photonic crystal fiber

2008

Ultracold sodium atoms have been trapped inside a hollow-core optical fiber. The atoms are transferred from a free space optical dipole trap into a trap formed by a red-detuned gaussian light mode confined to the core of the fiber. We show that at least 5% of the atoms held initially in the free space trap can be loaded into the core of the fiber and retrieved outside.

Condensed Matter::Quantum GasesPhysicsOptical fiberFOS: Physical sciencesPhysics::OpticsMicrostructured optical fiberAtomic and Molecular Physics and Opticslaw.inventionCondensed Matter - Other Condensed MatterCore (optical fiber)DipolelawUltracold atomPhysics::Atomic and Molecular ClustersPhysics::Atomic PhysicsFiberAtomic physicsOther Condensed Matter (cond-mat.other)Photonic crystalPhotonic-crystal fiberPhysical Review A
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Strong enhancement of Penning ionization for asymmetric atom pairs in cold Rydberg gases: the Tom and Jerry effect

2016

We consider Penning ionization of Rydberg atom pairs as an Auger-type process induced by the dipole–dipole interaction and employ semiclassical formulae for dipole transitions to calculate the autoionization width as a function of the principal quantum numbers, n d , n i , of both atoms. While for symmetric atom pairs with the well-known increase of the autoionization width with increasing n 0 is obtained, the result for asymmetric pairs is counterintuitive—for a fixed n i of the ionizing atom of the pair, the autoionization width strongly increases with decreasing n d of the de-excited atom. For H Rydberg atoms this increase reaches two orders of magnitude at the maximum of the n d depende…

Condensed Matter::Quantum GasesPhysicsPhotoionizationCondensed Matter Physics01 natural sciencesAtomic and Molecular Physics and Optics010305 fluids & plasmassymbols.namesakeAutoionizationPenning ionizationIonization0103 physical sciencesRydberg atomPrincipal quantum numberPhysics::Atomic and Molecular ClustersRydberg formulasymbolsRydberg matterPhysics::Atomic PhysicsAtomic physics010306 general physicsJournal of Physics B: Atomic, Molecular and Optical Physics
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Electron-cooled accumulation of 4 × 109positrons for production and storage of antihydrogen atoms

2016

Four billion positrons (e+) are accumulated in a Penning–Ioffe trap apparatus at 1.2 K and <6 × 10−17 Torr. This is the largest number of positrons ever held in a Penning trap. The e+ are cooled by collisions with trapped electrons (e−) in this first demonstration of using e− for efficient loading of e+ into a Penning trap. The combined low temperature and vacuum pressure provide an environment suitable for antihydrogen () production, and long antimatter storage times, sufficient for high-precision tests of antimatter gravity and of CPT.

Condensed Matter::Quantum GasesPhysicsPhysics::General PhysicsAntiparticleAnnihilationPlasmaElectronCondensed Matter PhysicsPenning trap01 natural sciencesAtomic and Molecular Physics and Optics010305 fluids & plasmasNuclear physicsTorrAntimatter0103 physical sciencesPhysics::Atomic and Molecular ClustersPhysics::Atomic PhysicsAtomic physics010306 general physicsAntihydrogenJournal of Physics B: Atomic, Molecular and Optical Physics
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Effects of a uniform acceleration on atom–field interactions

2014

We review some quantum electrodynamical effects related to the uniform acceleration of atoms in vacuum. After discussing the energy level shifts of a uniformly accelerated atom in vacuum, we investigate the atom-wall Casimir-Polder force for accelerated atoms, and the van der Waals/Casimir-Polder interaction between two accelerated atoms. The possibility of detecting the Unruh effect through these phenomena is also discussed in detail.

Condensed Matter::Quantum GasesPhysicsQuantum PhysicsField (physics)FOS: Physical sciencesGeneral Relativity and Quantum Cosmology (gr-qc)Condensed Matter PhysicsGeneral Relativity and Quantum CosmologyAtomic and Molecular Physics and OpticsCasimir effectGeneral Relativity and Quantum Cosmologysymbols.namesakeAccelerationUnruh effectUnruh effect Casimir–Polder forces vacuum fluctuationsAtomPhysics::Atomic and Molecular ClusterssymbolsPhysics::Accelerator PhysicsPhysics::Atomic Physicsvan der Waals forceAtomic physicsQuantum Physics (quant-ph)QuantumMathematical PhysicsPhysica Scripta
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