Search results for " gases"

showing 10 items of 941 documents

<title>Multiphoton-absorption-induced structural changes in fused silica</title>

1991

The basic properties (light refractive index, density, mechanical strength, etc.) of fused silica are changed by the influence of high-intensity light from the glass transparency region capable of generating excitons by multiphoton absorption. The self-trapped exciton decay near the microcavity in the fused silica structure leads to the stable elementary intrinsic defect pair (nonbridging oxygen atom and three-fold-coordinated silicon atom) generation. At the large- enough light intensities near such a microcavity with a defect, the next exciton can be self- trapped. Then the next elementary defect can appear in the microcavity, and a chemical bond between it and the previously generated de…

Condensed Matter::Quantum GasesMaterials scienceSiliconbusiness.industryOptical engineeringExcitonPhysics::Opticschemistry.chemical_elementMolecular physicsChemical speciesOpticsChemical bondchemistryAtombusinessAbsorption (electromagnetic radiation)Refractive indexSPIE Proceedings
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A Scanning Electron Microscope for Ultracold Atoms

2006

We propose a new technique for the detection of single atoms in ultracold quantum gases. The technique is based on scanning electron microscopy and employs the electron impact ionization of trapped atoms with a focussed electron probe. Subsequent detection of the resulting ions allows for the reconstruction of the atoms position. This technique is expected to achieve a much better spatial resolution compared to any optical detection method. In combination with the sensitivity to single atoms, it makes new in situ measurements of atomic correlations possible. The detection principle is also well suited for the addressing of individual sites in optical lattices.

Condensed Matter::Quantum GasesMaterials scienceStatistical Mechanics (cond-mat.stat-mech)Physics and Astronomy (miscellaneous)Scanning confocal electron microscopyFOS: Physical sciencesElectron tomographyUltracold atomScanning transmission electron microscopyPhysics::Atomic and Molecular ClustersEnergy filtered transmission electron microscopyPhysics::Atomic PhysicsElectron beam-induced depositionAtomic physicsHigh-resolution transmission electron microscopyInstrumentationEnvironmental scanning electron microscopeCondensed Matter - Statistical Mechanics
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Colossal Density-Driven Resistance Response in the Negative Charge Transfer Insulator MnS2

2021

A reversible density driven insulator to metal to insulator transition in high-spin MnS_{2} is experimentally observed, leading with a colossal electrical resistance drop of 10^{8}  Ω by 12 GPa. Density functional theory simulations reveal the metallization to be unexpectedly driven by previously unoccupied S_{2}^{2-} σ_{3p}^{*} antibonding states crossing the Fermi level. This is a unique variant of the charge transfer insulator to metal transition for negative charge transfer insulators having anions with an unsaturated valence. By 36 GPa the emergence of the low-spin insulating arsenopyrite (P2_{1}/c) is confirmed, and the bulk metallicity is broken with the system returning to an insula…

Condensed Matter::Quantum GasesMaterials scienceValence (chemistry)Condensed matter physicsFermi levelGeneral Physics and AstronomyInsulator (electricity)Charge (physics)Antibonding molecular orbitalMetalCondensed Matter::Materials Sciencesymbols.namesakeElectrical resistance and conductancevisual_artsymbolsvisual_art.visual_art_mediumCondensed Matter::Strongly Correlated ElectronsDensity functional theoryPhysical Review Letters
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Quasi-continuous-time impurity solver for the dynamical mean-field theory with linear scaling in the inverse temperature

2013

We present an algorithm for solving the self-consistency equations of the dynamical mean-field theory (DMFT) with high precision and efficiency at low temperatures. In each DMFT iteration, the impurity problem is mapped to an auxiliary Hamiltonian, for which the Green function is computed by combining determinantal quantum Monte Carlo (BSS-QMC) calculations with a multigrid extrapolation procedure. The method is numerically exact, i.e., yields results which are free of significant Trotter errors, but retains the BSS advantage, compared to direct QMC impurity solvers, of linear (instead of cubic) scaling with the inverse temperature. The new algorithm is applied to the half-filled Hubbard mo…

Condensed Matter::Quantum GasesModels StatisticalStrongly Correlated Electrons (cond-mat.str-el)Hubbard modelQuantum Monte CarloTemperatureExtrapolationFOS: Physical sciencesMott transitionCondensed Matter - Strongly Correlated Electronssymbols.namesakeMultigrid methodQuantum mechanicsLinear ModelssymbolsLinear scaleThermodynamicsComputer SimulationCondensed Matter::Strongly Correlated ElectronsStatistical physicsHamiltonian (quantum mechanics)ScalingAlgorithmsMathematicsPhysical Review E
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Optical Fibers Enter a New Space-Time Era

2016

We show experimentally a new type of parametric instability associated with the original phenomenon of beam self-cleaning in multimode fibers. Our experimental results are in good agreement with numerical solutions of the Gross-Pitaevskii equation.

Condensed Matter::Quantum GasesMulti-mode optical fiberOptical fiberbusiness.industrySpace timePhysics::OpticsParametric instabilitylaw.inventionFour-wave mixingOpticslawNear ultravioletbusinessLaser beamsBeam (structure)MathematicsPhotonics and Fiber Technology 2016 (ACOFT, BGPP, NP)
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Time-resolved Observation and Control of Superexchange Interactions with Ultracold Atoms in Optical Lattices

2007

Quantum mechanical superexchange interactions form the basis of quantum magnetism in strongly correlated electronic media. We report on the direct measurement of superexchange interactions with ultracold atoms in optical lattices. After preparing a spin-mixture of ultracold atoms in an antiferromagnetically ordered state, we measure a coherent superexchange-mediated spin dynamics with coupling energies from 5 Hz up to 1 kHz. By dynamically modifying the potential bias between neighboring lattice sites, the magnitude and sign of the superexchange interaction can be controlled, thus allowing the system to be switched between antiferromagnetic or ferromagnetic spin interactions. We compare our…

Condensed Matter::Quantum GasesMultidisciplinaryHubbard modelCondensed matter physicsChemistryMagnetismFOS: Physical sciencesCondensed Matter - Other Condensed MatterFerromagnetismSuperexchangeUltracold atomLattice (order)AntiferromagnetismCondensed Matter::Strongly Correlated ElectronsQuantumOther Condensed Matter (cond-mat.other)
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Cooling and stabilization by collisions in a mixed ion–atom system

2012

In mixed systems of trapped ions and cold atoms, the ions and atoms can coexist at different temperatures. This is primarily due to their different trapping and cooling mechanisms. The key questions of how ions can cool collisionally with cold atoms and whether the combined system allows stable coexistence, need to be answered. Here we experimentally demonstrate that rubidium ions cool in contact with magneto-optically trapped rubidium atoms, contrary to the general experimental expectation of ion heating. The cooling process is explained theoretically and substantiated with numerical simulations, which include resonant charge exchange collisions. The mechanism of single collision swap cool…

Condensed Matter::Quantum GasesMultidisciplinaryMaterials scienceGeneral Physics and AstronomyMineralogychemistry.chemical_elementGeneral ChemistryGeneral Biochemistry Genetics and Molecular BiologyRubidiumIonMixed systemschemistryPhysics::Plasma PhysicsAtomPhysics::Atomic and Molecular ClustersPhysics::Atomic PhysicsAtomic physicsNature Communications
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2015

AbstractAtomic manipulation in the scanning tunnelling microscopy, conventionally a tool to build nanostructures one atom at a time, is here employed to enable the atomic-scale imaging of a model low-dimensional system. Specifically, we use low-temperature STM to investigate an ultra thin film (4 atomic layers) of potassium created by epitaxial growth on a graphite substrate. The STM images display an unexpected honeycomb feature, which corresponds to a real-space visualization of the Wigner-Seitz cells of the close-packed surface K atoms. Density functional simulations indicate that this behaviour arises from the elastic, tip-induced vertical manipulation of potassium atoms during imaging,…

Condensed Matter::Quantum GasesMultidisciplinaryNanostructureStrain (chemistry)Computer scienceBioinformaticsEpitaxyMolecular physicsCondensed Matter::Materials ScienceMicroscopyAtomPhysics::Atomic and Molecular ClustersHoneycombPhysics::Atomic PhysicsGraphiteThin filmQuantum tunnellingScientific Reports
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"Table 2" of "Study of $e^+e^- \rightarrow p\bar{p}$ in the vicinity of $\psi(3770)$"

2014

The two solutions of the dressed cross section and the corresponding phase angles, PHI.

Condensed Matter::Quantum GasesNonlinear Sciences::Exactly Solvable and Integrable SystemsE+ E- --> P PBARE+ E- Scattering3.65-3.9Integrated Cross SectionExclusivePsiPhysics::Atomic PhysicsCross SectionSIG
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Pulsed gas injection for X-ray spectroscopy of highly charged ions stored in the magnetic trapping mode of an electron beam ion trap

1998

Abstract Highly charged atoms produced in an electron beam ion trap were stored after the electron beam was turned off by operating the trap in the magnetic trapping mode. Such storage allowed monitoring charge exchange reactions between the stored ions and residual neutral gas present in the trap by X-ray detection. The charge exchange reactions were enhanced by the application of a pulse of neutral gas. The method was exemplified for the case of H-like uranium interacting with neutral neon, where the K-shell X-rays and the series limit for the electron capture of U91+ were observed.

Condensed Matter::Quantum GasesNuclear and High Energy PhysicsIon beamElectron capturechemistry.chemical_elementPenning trapIonNeonchemistryCathode rayPhysics::Atomic PhysicsIon trapAtomic physicsInstrumentationElectron beam ion trapNuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
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