Search results for "quantum dot"

showing 10 items of 418 documents

Localization of particles in harmonic confinement: Effect of the interparticle interaction

2007

We study the localization of particles rotating in a two-dimensional harmonic potential by solving their rotational spectrum using many-particle quantum mechanics and comparing the result to that obtained with quantizing the rigid rotation and vibrational modes of localized particles. We show that for a small number of particles the localization is similar for bosons and fermions. Moreover, independent of the range of the interaction the quantum mechanical spectrum at large angular momenta can be understood by vibrational modes of localized particles.

PhysicsAngular momentumRange (particle radiation)Strongly Correlated Electrons (cond-mat.str-el)Condensed Matter - Mesoscale and Nanoscale PhysicsFOS: Physical sciencesFermionMolecular physicsAtomic and Molecular Physics and OpticsMany-body problemCondensed Matter - Strongly Correlated ElectronsQuantum dotMolecular vibrationQuantum mechanicsMesoscale and Nanoscale Physics (cond-mat.mes-hall)QuantumBosonPhysical Review A
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Vertical quantum dots with elliptically deformed cross sections

1999

Abstract Few-electron vertical quantum dot artificial atoms with circular and elliptically deformed cross sections are investigated. Because of the high symmetry of the lateral confining potential, circular dots show a pronounced shell structure. With the lifting of level degeneracies, even a small deformation in shape is found to radically alter the shell structure leading to significant modifications of the addition energy spectra, and to induce change in the total spin.

PhysicsArtificial atomCondensed matter physicsQuantum dotElectrical and Electronic EngineeringDeformation (meteorology)Condensed Matter PhysicsSymmetry (physics)Spectral lineElectronic Optical and Magnetic MaterialsSpin-½Physica B: Condensed Matter
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Models of Metal Clusters and Quantum Dots

2007

The electronic structure of simple metal clusters and quantum dots is studied on the basis of the density functional theory and simple models. It is demonstrated that single-particle models explain well the gross features of deformation and magnetism in small clusters, nuclei and quantum dots and that the local density approximation can give valuable information of the internal structure of the manybody state.

PhysicsBasis (linear algebra)Condensed matter physicsSimple (abstract algebra)Quantum dotMagnetismStructure (category theory)Density functional theoryElectronic structureLocal-density approximationCondensed Matter::Mesoscopic Systems and Quantum Hall Effect
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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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Electronic structure of triangular, hexagonal and round graphene flakes near the Fermi level

2008

The electronic shell structure of triangular, hexagonal and round graphene quantum dots (flakes) near the Fermi level has been studied using a tight-binding method. The results show that close to the Fermi level the shell structure of a triangular flake is that of free massless particles, and that triangles with an armchair edge show an additional sequence of levels ("ghost states"). These levels result from the graphene band structure and the plane wave solution of the wave equation, and they are absent for triangles with an zigzag edge. All zigzag triangles exhibit a prominent edge state at the Fermi level, and few low-energy conduction electron states occur both in triangular and hexagon…

PhysicsCondensed Matter - Materials ScienceCondensed Matter - Mesoscale and Nanoscale PhysicsCondensed matter physicsGrapheneFermi levelPlane waveMaterials Science (cond-mat.mtrl-sci)FOS: Physical sciencesGeneral Physics and AstronomyElectronic structureEdge (geometry)law.inventionsymbols.namesakeComputer Science::Emerging TechnologiesZigzaglawQuantum dotMesoscale and Nanoscale Physics (cond-mat.mes-hall)symbolsElectronic band structureNew Journal of Physics
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Field Dependence of the Electron Spin Relaxation in Quantum Dots

2005

Interaction of the electron spin with local elastic twists due to transverse phonons has been studied. Universal dependence of the spin relaxation rate on the strength and direction of the magnetic field has been obtained in terms of the electron gyromagnetic tensor and macroscopic elastic constants of the solid. The theory contains no unknown parameters and it can be easily tested in experiment. At high magnetic field it provides parameter-free lower bound on the electron spin relaxation in quantum dots.

PhysicsCondensed Matter - Materials ScienceCondensed matter physicsSpin polarizationStatistical Mechanics (cond-mat.stat-mech)Relaxation (NMR)General Physics and AstronomyMaterials Science (cond-mat.mtrl-sci)FOS: Physical sciences02 engineering and technologyElectronZero field splitting021001 nanoscience & nanotechnology01 natural sciences7. Clean energyElectron magnetic dipole momentSpin magnetic momentQuantum dot0103 physical sciencesSpinplasmonics010306 general physics0210 nano-technologyCondensed Matter - Statistical Mechanics
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Measurement and control of electron wave packets from a single-electron source

2015

We report an experimental technique to measure and manipulate the arrival-time and energy distributions of electrons emitted from a semiconductor electron pump, operated as both a single-electron source and a two-electron source. Using an energy-selective detector whose transmission we control on picosecond time scales, we can measure directly the electron arrival-time distribution and we determine the upper bound to the distribution width to be 30 ps. We study the effects of modifying the shape of the voltage wave form that drives the electron pump, and show that our results can be explained by a tunneling model of the emission mechanism. This information was in turn used to control the em…

PhysicsCondensed Matter - Mesoscale and Nanoscale PhysicsBand gapbusiness.industryWave packetDetectorEnergy-dispersive X-ray spectroscopyFOS: Physical sciencesElectronCondensed Matter PhysicsElectronic Optical and Magnetic MaterialsSemiconductorQuantum dotPicosecondMesoscale and Nanoscale Physics (cond-mat.mes-hall)7 Affordable and Clean EnergyAtomic physicsbusiness
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Non-adiabatic pumping of single electrons affected by magnetic fields

2009

Non-adiabatic pumping of discrete charges, realized by a dynamical quantum dot in an AlGaAs/GaAs heterostructure, is studied under influence of a perpendicular magnetic field. Application of an oscillating voltage in the GHz-range to one of two top gates, crossing a narrow wire and confining a quantum dot, leads to quantized pumped current plateaus in the gate characteristics. The regime of pumping one single electron is traced back to the diverse tunneling processes into and out-of the dot. Extending the theory to multiple electrons allows to investigate conveniently the pumping characteristics in an applied magnetic field. In this way, a qualitatively different behavior between pumping ev…

PhysicsCondensed Matter - Mesoscale and Nanoscale PhysicsCondensed matter physicsFOS: Physical sciencesHeterojunction02 engineering and technologyElectronCondensed Matter::Mesoscopic Systems and Quantum Hall Effect021001 nanoscience & nanotechnologyCondensed Matter Physics01 natural sciencesAtomic and Molecular Physics and OpticsElectronic Optical and Magnetic MaterialsMagnetic fieldTunnel effectQuantum dotMesoscale and Nanoscale Physics (cond-mat.mes-hall)0103 physical sciences010306 general physics0210 nano-technologyAdiabatic processQuantum tunnellingVoltagePhysica E: Low-dimensional Systems and Nanostructures
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Nonlinear thermovoltage and thermocurrent in quantum dots

2013

Quantum dots are model systems for quantum thermoelectric behavior because of their ability to control and measure the effects of electron-energy filtering and quantum confinement on thermoelectric properties. Interestingly, nonlinear thermoelectric properties of such small systems can modify the efficiency of thermoelectric power conversion. Using quantum dots embedded in semiconductor nanowires, we measure thermovoltage and thermocurrent that are strongly nonlinear in the applied thermal bias. We show that most of the observed nonlinear effects can be understood in terms of a renormalization of the quantum-dot energy levels as a function of applied thermal bias and provide a theoretical m…

PhysicsCondensed Matter - Mesoscale and Nanoscale PhysicsCondensed matter physicsNanowireMeasure (physics)FOS: Physical sciencesGeneral Physics and Astronomyddc:RenormalizationCondensed Matter::Materials ScienceNonlinear systemQuantum dotSeebeck coefficientMesoscale and Nanoscale Physics (cond-mat.mes-hall)Thermoelectric effectCondensed Matter::Strongly Correlated ElectronsQuantumNew Journal of Physics
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Ellipsoidal deformation of vertical quantum dots

1999

Addition energy spectra at 0 T of circular and ellipsoidally deformed few-electron vertical quantum dots are measured and compared to results of model calculations within spin-density functional theory. Because of the rotational symmetry of the lateral harmonic confining potential, circular dots show a pronounced shell structure. With the lifting of the single- particle level degeneracies, even a small deformation is found to radically alter the shell structure leading to significant modifications in the addition energy spectra. Breaking the circular symmetry with deformation also induces changes in the total spin. This "piezo-magnetic" behavior of quantum dots is discussed, and the additio…

PhysicsCondensed Matter - Mesoscale and Nanoscale PhysicsCondensed matter physicsQuantum dotMesoscale and Nanoscale Physics (cond-mat.mes-hall)Rotational symmetryFOS: Physical sciencesCircular symmetryDeformation (meteorology)AnisotropyGround stateSpin-½Magnetic field
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