Search results for "Coulomb"

showing 10 items of 379 documents

A Theoretical Model to Describe the Motion of Aerosol Particles Due to the Combined Action of Inertia, Brownian Diffusion and Phoretic and Electric F…

1978

Abstract General principles of non-equilibrium thermodynamics are used to formulate a model which describes the motion of aerosol particles affected simultaneously by Brownian diffusion, inertial impaction, electric forces and phoretic forces. The theory presented applies to an ideal mixture consisting of dry air, water vapor and aerosol particles where temperature, pressure as well as vapor and particle concentration inhomogeneities are to be considered. In addition, the system is subjected to the earth's gravity, to an external electric field as well as to a Coulomb force due to a charged collecting water drop. The basic model assumptions are as follows: 1) the diffusive kinetic energy of…

PhysicsAtmospheric ScienceInternal energyEntropy productionmedia_common.quotation_subjectInertiaAerosolCoulomb's lawEntropy (classical thermodynamics)symbols.namesakeClassical mechanicsElectric fieldsymbolsPhysics::Atmospheric and Oceanic PhysicsBrownian motionmedia_commonJournal of the Atmospheric Sciences
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Observation of Coulomb-Assisted Nuclear Bound State of Ξ−–N14 System

2021

In an emulsion-counter hybrid experiment performed at J-PARC, a Ξ^{-} absorption event was observed which decayed into twin single-Λ hypernuclei. Kinematic calculations enabled a unique identification of the reaction process as Ξ^{-}+^{14}N→_{Λ}^{10}Be+_{Λ}^{5}He. For the binding energy of the Ξ^{-} hyperon in the Ξ^{-}-^{14}N system a value of 1.27±0.21  MeV was deduced. The energy level of Ξ^{-} is likely a nuclear 1p state which indicates a weak ΞN-ΛΛ coupling.

PhysicsBinding energyHyperonGeneral Physics and AstronomyState (functional analysis)Coupling (probability)01 natural sciences0103 physical sciencesBound stateCoulombAbsorption (logic)Atomic physics010306 general physicsEnergy (signal processing)Physical Review Letters
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Quantum criticality perspective on the charging of narrow quantum-dot levels.

2008

Understanding the charging of exceptionally narrow levels in quantum dots in the presence of interactions remains a challenge within mesoscopic physics. We address this fundamental question in the generic model of a narrow level capacitively coupled to a broad one. Using bosonization we show that for arbitrary capacitive coupling charging can be described by an analogy to the magnetization in the anisotropic Kondo model, featuring a low-energy crossover scale that depends in a power-law fashion on the tunneling amplitude to the level. Explicit analytical expressions for the exponent are derived and confirmed by detailed numerical and functional renormalization-group calculations.

PhysicsBosonizationMesoscopic physicsStrongly Correlated Electrons (cond-mat.str-el)Condensed Matter - Mesoscale and Nanoscale PhysicsCondensed matter physicsFOS: Physical sciencesGeneral Physics and AstronomyCoulomb blockadeCondensed Matter::Mesoscopic Systems and Quantum Hall EffectCondensed Matter - Strongly Correlated ElectronsQuantum dotQuantum mechanicsMesoscale and Nanoscale Physics (cond-mat.mes-hall)Strongly correlated materialKondo modelQuantumQuantum tunnellingPhysical review letters
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A wind tunnel study of the effects of collision processes on the shape and oscillation for moderate-size raindrops

2014

Abstract Drop–drop collision experiments were carried out at the Mainz vertical wind tunnel. Water drops of 2.5 mm diameter were freely floated at their terminal velocities in a vertical air stream and collided with 0.5 mm diameter droplets. The collisions were recorded with a high speed digital video camera at a frame rate of 1000 per second. Altogether 116 collision events were observed, 75 of which ended with coalescence, and the rest with filament type breakup. The coalescence efficiency and its dependence on the Weber number and on the eccentricity of the colliding drops showed good agreement with earlier numerical studies. Thirty-six recorded collisions were further analyzed in order …

PhysicsCoalescence (physics)Atmospheric ScienceOscillationCoulomb collisionDrop (liquid)MechanicsBreakupCollisionPhysics::Fluid DynamicsClassical mechanicsWeber numberNuclear ExperimentWind tunnelAtmospheric Research
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Coulomb blockade in one-dimensional arrays of high-conductance tunnel junctions

2000

Properties of one-dimensional (1D) arrays of low Ohmic tunnel junctions (i.e. junctions with resistances comparable to, or less than, the quantum resistance $R_{\rm q}\equiv h/e^2\approx 25.8$ k$\Omega$) have been studied experimentally and theoretically. Our experimental data demonstrate that -- in agreement with previous results on single- and double-junction systems -- Coulomb blockade effects survive even in the strong tunneling regime and are still clearly visible for junction resistances as low as 1 k$\Omega$. We have developed a quasiclassical theory of electron transport in junction arrays in the strong tunneling regime. Good agreement between the predictions of this theory and the …

PhysicsCondensed Matter - Mesoscale and Nanoscale PhysicsCondensed matter physicsFOS: Physical sciencesConductanceCoulomb blockadeElectronic temperatureCondensed Matter::Mesoscopic Systems and Quantum Hall EffectOmegaCondensed Matter::SuperconductivityMesoscale and Nanoscale Physics (cond-mat.mes-hall)Zero biasAtomic physicsOhmic contactQuantumQuantum tunnellingPhysical Review B
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Heat diffusion in the disordered electron gas

2015

We study the thermal conductivity of the disordered two-dimensional electron gas. To this end we analyze the heat density-heat density correlation function concentrating on the scattering processes induced by the Coulomb interaction in the sub-temperature energy range. These scattering processes are at the origin of logarithmic corrections violating the Wiedemann-Franz law. Special care is devoted to the definition of the heat density in the presence of the long-range Coulomb interaction. To clarify the structure of the correlation function, we present details of a perturbative calculation. While the conservation of energy strongly constrains the general form of the heat density-heat densit…

PhysicsCondensed Matter - Mesoscale and Nanoscale PhysicsCondensed matter physicsStrongly Correlated Electrons (cond-mat.str-el)ScatteringFOS: Physical sciences02 engineering and technology021001 nanoscience & nanotechnology01 natural sciencesConserved quantityCondensed Matter - Strongly Correlated ElectronsCorrelation function (statistical mechanics)Thermal conductivity0103 physical sciencesMesoscale and Nanoscale Physics (cond-mat.mes-hall)CoulombHeat equation010306 general physics0210 nano-technologyFermi gasSpin-½
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Universal decay cascade model for dynamic quantum dot initialization.

2009

Dynamic quantum dots can be formed by time-dependent electrostatic potentials in nanoelectronic devices, such as gate- or surface-acoustic-wave-driven electron pumps. Ability to control the number of captured electrons with high precision is required for applications in fundamental metrology and quantum information processing. In this work we propose and quantify a scheme to initialize quantum dots with a controllable number of electrons. It is based on the stochastic decrease in the electron number of a shrinking dynamic quantum dot and is described by a nuclear decay cascade model with "isotopes" being different charge states of the dot. Unlike the natural nuclei, the artificial confineme…

PhysicsCondensed Matter - Mesoscale and Nanoscale PhysicsStrongly Correlated Electrons (cond-mat.str-el)FOS: Physical sciencesGeneral Physics and AstronomyInitializationCoulomb blockade02 engineering and technologyDecoupling (cosmology)Electron021001 nanoscience & nanotechnology01 natural sciencesComputational physicsCondensed Matter - Strongly Correlated ElectronsQuantum dotCascadeQuantum mechanicsMesoscale and Nanoscale Physics (cond-mat.mes-hall)0103 physical sciencesMaster equationProbability distribution010306 general physics0210 nano-technologyPhysical review letters
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A Monte Carlo Study of the Low-Temperature Properties of Strongly Correlated Localized Particles in Disordered Systems

1993

A computer simulation method is presented, which yields the ground state as well as the low-energy excitations for disordered systems of many interacting particles. The efficiency of the method is demonstrated by the application to the Coulomb glass, i.e. many localized electrons with long-range interaction. The obtained knowledge about the specific configurations of a large number of excited states is only the starting point for further investigations. First results are presented which shed a new light on old controversies about the behaviour of correlated electrons within the Coulomb gap regime.

PhysicsCondensed matter physicsComputer simulationElectronic correlationExcited stateMonte Carlo methodCoulombGeneral Physics and AstronomyElectronGround stateElectron localization functionEurophysics Letters (EPL)
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Gaussian quantum dots of type II in in-plane electric field

2007

The growing interest is recently focusing on QDs of type II, which contrary to type I QDs attract electrons and repulse holes (or conversely). In such QDs an electron-hole pair (Xexciton) can still be traped due to electron-hole Coulomb attraction, resulting in significantly more complex structure of excitonic states. We consider an X exciton in QD of type II defined by electrostatic focusing in a narrow quantum well, in the presence of additional external in-plane electric field. The dependence of PL spectrum on dot size and in-plane electric field is analysed within the Hartree approach for model planar Gaussian confinement. The exciton ground state and its energy red-shift are found as a…

PhysicsCondensed matter physicsCondensed Matter::OtherExcitonGaussianSurfaces and InterfacesElectronHartreeCondensed Matter::Mesoscopic Systems and Quantum Hall EffectCondensed Matter PhysicsSurfaces Coatings and FilmsElectronic Optical and Magnetic Materialssymbols.namesakeQuantum dotElectric fieldMaterials ChemistryCoulombsymbolsElectrical and Electronic EngineeringQuantum wellphysica status solidi (a)
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One dimensional arrays and solitary tunnel junctions in the weak coulomb blockade regime: CBT thermometry

1997

In this article we review the use of the tunnel junction arrays for primary thermometry. In addition to our basic experimental and theoretical results we stress the insensitivity of this method to the fluctuating background charges, to nonidealities in the array and to magnetic field. Important new results of this article are the low temperature corrections to the half width and depth of the measured conductance dip beyond the linear approximation. We also point ou that short arrays, single tunnel junctions in particular, show interesting deviations from the universal behaviour of the long arrays.

PhysicsCondensed matter physicsConductanceCoulomb blockadeCondensed Matter PhysicsIon beam lithographyAtomic and Molecular Physics and OpticsMagnetic fieldStress (mechanics)Electrical resistance and conductanceTunnel junctionCondensed Matter::SuperconductivityGeneral Materials ScienceLinear approximationJournal of Low Temperature Physics
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