Search results for " Localization"

showing 10 items of 319 documents

When are thin films of metals metallic? Part III

1996

Abstract A large amount of experimental information has indicated that very thin films of metallic elements can exhibit nonmetallic behavior, even on metal substrates. These films undergo a gradual nonmetal to metal transition with increasing film density or thickness. The nonmetallic behavior can be related to electron localization due to strong electron-electron correlation in low dimensional systems, as indicated by the strong enhancement of electron effective mass. The evolution in the electronic structure associated with the nonmetal to metal transition bears a striking resemblance to the behavior observed for free metal clusters. Part I [1], outlined the general concepts of a nonmetal…

Phase transitionMaterials scienceMetal K-edgeMechanical EngineeringElectronic structureCondensed Matter PhysicsElectron localization functionMetalEffective mass (solid-state physics)NonmetalMechanics of MaterialsChemical physicsvisual_artvisual_art.visual_art_mediumGeneral Materials ScienceThin filmMaterials Science and Engineering: A
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Quantum non-Markovianity induced by Anderson localization

2017

As discovered by P. W. Anderson, excitations do not propagate freely in a disordered lattice, but, due to destructive interference, they localise. As a consequence when an atom interacts with a disordered lattice one indeed observes, a non-trivial excitation exchange between atom and lattice. Such non-trivial atomic dynamics will in general be characterised also by a non-trivial quantum information backflow, a clear signature of non-Markovian dynamics. To investigate the above scenario we consider a quantum emitter, or atom, weakly coupled to a uniform coupled-cavity array (CCA). If initially excited, in the absence of disorder, the emitter undergoes a Markovian spontaneous emission by rele…

Physics---Anderson localizationQuantum PhysicsMultidisciplinaryFOS: Physical sciences01 natural sciencesArticleSettore FIS/03 - Fisica Della Materia010305 fluids & plasmasNormal modeExcited stateQuantum mechanics0103 physical sciencesPhenomenological modelAtomSpontaneous emissionQuantum information010306 general physicsQuantum Physics (quant-ph)QuantumScientific Reports
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Level statistics and Anderson delocalization in two-dimensional granular materials

2020

Contrary to the theoretical predictions that all waves in two-dimensional disordered materials are localized, Anderson localization is observed only for sufficiently high frequencies in an isotropically jammed two-dimensional disordered granular packing of photoelastic disks. More specifically, we have performed an experiment in analyzing the level statistics of normal mode vibrations. We observe delocalized modes in the low-frequency boson-peak regime and localized modes in the high frequency regime with the crossover frequency just below the Debye frequency. We find that the level-distance distribution obeys Gaussian-Orthogonal-Ensemble (GOE) statistics, i.e. Wigner-Dyson distribution, in…

PhysicsAnderson localizationFOS: Physical sciences02 engineering and technologyCondensed Matter - Soft Condensed Matter021001 nanoscience & nanotechnologyGranular material01 natural sciencesDebye frequencyDelocalized electronNormal mode0103 physical sciencesStatisticsExponentSoft Condensed Matter (cond-mat.soft)010306 general physics0210 nano-technologyScalingAnderson impurity model
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The phase diagram of the multi-dimensional Anderson localization via analytic determination of Lyapunov exponents

2004

The method proposed by the present authors to deal analytically with the problem of Anderson localization via disorder [J.Phys.: Condens. Matter {\bf 14} (2002) 13777] is generalized for higher spatial dimensions D. In this way the generalized Lyapunov exponents for diagonal correlators of the wave function, $$, can be calculated analytically and exactly. This permits to determine the phase diagram of the system. For all dimensions $D > 2$ one finds intervals in the energy and the disorder where extended and localized states coexist: the metal-insulator transition should thus be interpreted as a first-order transition. The qualitative differences permit to group the systems into two classes…

PhysicsAnderson localizationGroup (mathematics)DiagonalFOS: Physical sciencesLyapunov exponentFunction (mathematics)Disordered Systems and Neural Networks (cond-mat.dis-nn)Condensed Matter - Disordered Systems and Neural NetworksCondensed Matter PhysicsElectronic Optical and Magnetic Materialssymbols.namesakePercolationsymbolsCritical dimensionMathematical physicsPhase diagram
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What is the Right Theory for Anderson Localization of Light? An Experimental Test

2018

Anderson localization of light is traditionally described in analogy to electrons in a random potential. Within this description, the random potential depends on the wavelength of the incident light. For transverse Anderson localization, this leads to the prediction that the distribution of localization lengths---and, hence, its average---strongly depends on the wavelength. In an alternative description, in terms of a spatially fluctuating electric modulus, this is not the case. Here, we report on an experimentum crucis in order to investigate the validity of the two conflicting theories using optical samples exhibiting transverse Anderson localization. We do not find any dependence of the …

PhysicsAnderson localizationPhysics and Astronomy (all); Anderson localization of light; electronsSigma modelGeneral Physics and AstronomyElectronWave equation01 natural sciencesRayExperimentum crucis010309 opticsNonlinear systemWavelengthQuantum mechanics0103 physical sciences010306 general physicsPhysical Review Letters
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Spatial multifractal properties of wave packets in the Anderson model of localization.

1993

The multifractal properties of electronic wave functions in disordered samples are investigated. In a given energy range all eigenstates are determined for the same disorder configuration in the Anderson model of localization. It is shown that the singularity spectrum and the generalized dimensions change only slowly with energy, aside from statistical fluctuations. More important, the wave packet constructed by linear combination of the eigenstates shows quantitatively the same multifractal properties. Consequences for the transport properties of electronic states in disordered systems are discussed.

PhysicsAnderson localizationQuantum mechanicsWave packetMultifractal systemElectronic structureStatistical physicsStatistical fluctuationsSingularity spectrumWave functionCondensed Matter::Disordered Systems and Neural NetworksAnderson impurity modelPhysical review. B, Condensed matter
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Fermion confinement via quantum walks in (2+1)-dimensional and (3+1)-dimensional space-time

2017

We analyze the properties of a two- and three-dimensional quantum walk that are inspired by the idea of a brane-world model put forward by Rubakov and Shaposhnikov [Phys. Lett. B 125, 136 (1983)PYLBAJ0370-269310.1016/0370-2693(83)91253-4]. In that model, particles are dynamically confined on the brane due to the interaction with a scalar field. We translated this model into an alternate quantum walk with a coin that depends on the external field, with a dependence which mimics a domain wall solution. As in the original model, fermions (in our case, the walker) become localized in one of the dimensions, not from the action of a random noise on the lattice (as in the case of Anderson localiza…

PhysicsAnderson localizationSpace timeOne-dimensional spaceFermion01 natural sciences010305 fluids & plasmas[PHYS.QPHY]Physics [physics]/Quantum Physics [quant-ph]Quantum mechanicsLattice (order)0103 physical sciencesQuantum walkBrane010306 general physicsScalar fieldComputingMilieux_MISCELLANEOUS
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Electronic structure, localization, and spin-state transition in Cu-substitutedFeSe:Fe1−xCuxSe

2010

We report density-functional studies of the ${\text{Fe}}_{1\ensuremath{-}x}{\text{Cu}}_{x}\text{Se}$ alloy done using supercell and coherent-potential approximation methods. Magnetic behavior was investigated using the disordered local moment approach. We find that Cu occurs in a nominal ${d}^{10}$ configuration and is highly disruptive to the electronic structure of the Fe sheets. This would be consistent with a metal-insulator transition due to Anderson localization. We further find a strong crossover from a weak moment itinerant system to a local moment magnet at $x\ensuremath{\approx}0.12$. We associate this with the experimentally observed jump near this concentration. Our results are …

PhysicsAnderson localizationSpin glassCondensed matter physicsSpin statesAlloyElectronic structureengineering.materialCondensed Matter PhysicsElectronic Optical and Magnetic MaterialsMoment (physics)engineeringSupercell (crystal)Spin-½Physical Review B
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Spatiotemporal rotational dynamics of laser-driven molecules

2020

Molecular alignment and orientation by laser fields has attracted significant attention in recent years, mostly due to new capabilities to manipulate the molecular spatial arrangement. Molecules can now be efficiently prepared for ionization, structural imaging, orbital tomography, and more, enabling, for example, shooting of dynamic molecular movies. Furthermore, molecular alignment and orientation processes give rise to fundamental quantum and classical phenomena like quantum revivals, Anderson localization, and rotational echoes, just to mention a few. We review recent progress on the visualization, coherent control, and applications of the rich dynamics of molecular rotational wave pack…

PhysicsAnderson localizationbusiness.industryGeneral MedicinePolarization (waves)RotationLaserComputational physicslaw.inventionlawCoherent controlOrientation (geometry)PhotonicsbusinessQuantumAdvanced Photonics
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Analytical description of the transverse Anderson localization of light

2017

PhysicsAnderson localizationoptical fibersoptical theory02 engineering and technologyAnderson localization; optical fibers; optical theory; Electronic Optical and Magnetic Materials; Atomic and Molecular Physics and Optics021001 nanoscience & nanotechnology01 natural sciencesAtomic and Molecular Physics and OpticsElectronic Optical and Magnetic MaterialsTransverse planeAtomic and Molecular PhysicsQuantum electrodynamics0103 physical sciencesElectronicAnderson localizationOptical and Magnetic Materialsand Optics010306 general physics0210 nano-technologyJournal of Optics
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