Search results for "Resolved sideband cooling"

showing 7 items of 7 documents

Towards laser cooling of fast Be+ ions in the storage ring TSR

1989

Publisher Summary This chapter presents a clear understanding of laser-ion interactions under storage ring conditions to prepare the basis of laser cooling of fast-stored ion beams. In addition, the method of laser-induced fluorescence provides precise data for beam properties such as absolute velocity, momentum spread, and lifetime. 9Be+ ions stored in a heavy-ion storage ring are a promising species for laser cooling down to temperatures several orders of magnitude less than those reached for protons by electron cooling at the Novosibirsk ring. Short cooling times and microkelvin temperatures can be envisaged, where the structure of the ion beam is dominated by Coulomb repulsion. The chap…

Dye laserIon beamResolved sideband coolinglawChemistryLaser coolingLight beamPhysics::Atomic PhysicsAtomic physicsRing (chemistry)Storage ringElectron coolinglaw.invention
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Pairing based cooling of Fermi gases

2007

We propose a pairing-based method for cooling an atomic Fermi gas. A three component (labels 1, 2, 3) mixture of Fermions is considered where the components 1 and 2 interact and, for instance, form pairs whereas the component 3 is in the normal state. For cooling, the components 2 and 3 are coupled by an electromagnetic field. Since the quasiparticle distributions in the paired and in the normal states are different, the coupling leads to cooling of the normal state even when initially $T_{paired}\geq T_{normal}$ (notation $T_S\geq T_N$). The cooling efficiency is given by the pairing energy and by the linewidth of the coupling field. No superfluidity is required: any type of pairing, or ot…

PhysicsCondensed matter physicsResolved sideband coolingCondensed Matter - SuperconductivityFOS: Physical sciencesCoupling (probability)7. Clean energy01 natural sciencesAtomic and Molecular Physics and Optics010305 fluids & plasmasSuperconductivity (cond-mat.supr-con)Condensed Matter - Other Condensed MatterLaser coolingPairing0103 physical sciencesQuasiparticleAtomic physicsConnection (algebraic framework)010306 general physicsFermi gasEnergy (signal processing)Other Condensed Matter (cond-mat.other)
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Laser cooling of stored relativistic ion beams with large momentum spreads using a laser system with a wide scanning range

2014

New results on laser cooling of stored, bunched, relativistic ion beams are presented. For the first time it has been possible to cool an ion beam with large momentum spread without initial electron cooling or scanning of the bunching frequency by using a single cw laser system.

PhysicsHistoryRange (particle radiation)Ion beamResolved sideband coolingbusiness.industryLaserComputer Science ApplicationsEducationIonlaw.inventionMomentumOpticslawLaser coolingPhysics::Accelerator PhysicsPhysics::Atomic PhysicsAtomic physicsbusinessElectron coolingJournal of Physics: Conference Series
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Ion beam preparation of 7Li+ for precision experiments at heavy ion storage rings

1997

Abstract Heavy ion storage rings allow for tests of the structure of local space time via the Doppler effect. At the TSR/Heidelberg an experiment with high resolution laser spectroscopy at 7 Li + is performed. To gain the maximum resolution for saturation spectroscopy new methods of relativistic ion beam preparation and diagnostics have been developed. The laser cooling of the beam allows for precision determination of the mean velocity of the ions. A novel phase synchronous detection scheme, ultimately sensitive to single ions, gives insights into the cooling mechanism and dynamics. With an additional synchronous excitation scheme systematic uncertainties of the test experiment can be dras…

PhysicsNuclear and High Energy PhysicsIon beam depositionResolved sideband coolingIon beamlawLaser coolingAtomic physicsIon gunLaserElectron coolinglaw.inventionIonNuclear Physics A
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Transverse laser cooling of a radio-frequency bunched ion beam in the storage ring TSR

1996

Abstract We report on the observation of the indirect transverse laser cooling effect in a radio-frequency bunched beam of 7.3 MeV 9 Be + ions, stored in the Heidelberg Test Storage Ring and subject to direct longitudinal laser cooling. This bunched scheme offers particular advantages for producing ultracold beams with unprecedented phase-space densities.

PhysicsNuclear and High Energy PhysicsResolved sideband coolingIon beamIonTransverse planeLaser coolingPhysics::Accelerator PhysicsPhysics::Atomic PhysicsRadio frequencyAtomic physicsNuclear ExperimentInstrumentationBeam (structure)Storage ring
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Laser cooling of stored high-velocity ions by means of the spontaneous force

1993

A longitudinal laser cooling of ion beams at about 5% of the velocity of light has been performed at the Heidelberg Test Storage Ring with various cooling schemes employing the spontaneous force. For a 7.29-MeV $^{9}\mathrm{Be}^{+}$ beam with an initial longitudinal temperature of 2700 K, the main characteristics of laser cooling in a storage ring are discussed. When undamped, the transverse betatron oscillations of the coasting ions limit the longitudinal temperature after laser cooling to typically 1 K. After damping the transverse motion by precooling the ions with an electron cooler, longitudinal temperatures of below 30 mK have been obtained in the subsequent laser cooling. In this cas…

PhysicsResolved sideband coolingIon beamElectronLaserAtomic and Molecular Physics and OpticsIonlaw.inventionIntrabeam scatteringlawLaser coolingPhysics::Accelerator PhysicsPhysics::Atomic PhysicsAtomic physicsDoppler coolingPhysical Review A
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Spatial separation of atomic states in a laser-cooled ion crystal

1998

A laser cooled ion crystal containing several hundred Ca+ ions has been stored in a linear Paul trap. Cooling is provided by a red detund laser at the 4S1/2−4P1/2 resonance transition. A second laser serves for repumping of those ions which decay from the excited 4P1/2 level to the metastable 3D3/2 state. The ions can be additionally excited by a third laser to a long lived metastable 3D5/2 energy level which decouples them from the cooling laser radiation. The light pressure acting upon the laser cooled ions pushes them into the direction of the laser beam. The ions in the metastable 3D5/2 state, however, do not experience any light pressure force and diffuse to the crystal side which poin…

PhysicsResolved sideband coolingPhysics::OpticsLaserAtomic and Molecular Physics and OpticsIonlaw.inventionCrystalPhysics::Plasma PhysicslawLaser coolingExcited statePhysics::Atomic PhysicsIon trapAtomic physicsAtomic vapor laser isotope separationPhysical Review A
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