Search results for " insulator"

showing 10 items of 148 documents

Spin texture of time-reversal symmetry invariant surface states on W(110)

2016

AbstractWe find in the case of W(110) previously overlooked anomalous surface states having their spin locked at right angle to their momentum using spin-resolved momentum microscopy. In addition to the well known Dirac-like surface state with Rashba spin texture near the "Equation missing"-point, we observe a tilted Dirac cone with circularly shaped cross section and a Dirac crossing at 0.28 × "Equation missing" "Equation missing" within the projected bulk band gap of tungsten. This state has eye-catching similarities to the spin-locked surface state of a topological insulator. The experiments are fortified by a one-step photoemission calculation in its density-matrix formulation.

PhysicsMultidisciplinaryCondensed matter physicsTexture (cosmology)Dirac (software)Right angleLarge scale facilities for research with photons neutrons and ions02 engineering and technology021001 nanoscience & nanotechnology01 natural sciencesArticleMomentumT-symmetryTopological insulator0103 physical sciencesCondensed Matter::Strongly Correlated Electrons010306 general physics0210 nano-technologySpin-½Surface statesScientific Reports
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Bulk-free topological insulator Bi 2 Se 3 nanoribbons with magnetotransport signatures of Dirac surface states

2018

Many applications for topological insulators (TIs) as well as new phenomena require devices with reduced dimensions. While much progress has been made to realize thin films of TIs with low bulk carrier density, nanostructures have not yet been reported with similar properties, despite the fact that size confinement should help reduce contributions from bulk carriers. Here we demonstrate that Bi2Se3 nanoribbons, grown by a simple catalyst-free physical-vapour deposition, have inherently low bulk carrier densities, and can be further made bulk-free by size confinement, thus revealing the high mobility topological surface states. Magneto transport and Hall conductance measurements, in single n…

PhysicsNanostructureCondensed Matter - Mesoscale and Nanoscale PhysicsCondensed matter physicsDirac (software)FOS: Physical sciencesConductance02 engineering and technology021001 nanoscience & nanotechnology01 natural sciencesTopological insulatorMesoscale and Nanoscale Physics (cond-mat.mes-hall)0103 physical sciencesGeneral Materials ScienceThin film010306 general physics0210 nano-technologyMagnetoDeposition (law)Surface statesNanoscale
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Renormalization group flows for Wilson-Hubbard matter and the topological Hamiltonian

2019

Understanding the robustness of topological phases of matter in the presence of interactions poses a difficult challenge in modern condensed matter, showing interesting connections to high energy physics. In this work, we leverage these connections to present a complete analysis of the continuum long-wavelength description of a generic class of correlated topological insulators: Wilson-Hubbard topological matter. We show that a Wilsonian renormalization group (RG) approach, combined with the so-called topological Hamiltonian, provide a quantitative route to understand interaction-induced topological phase transitions that occur in Wilson-Hubbard matter. We benchmark two-loop RG predictions …

PhysicsPhase transitionQuantum PhysicsStrongly Correlated Electrons (cond-mat.str-el)FOS: Physical sciences02 engineering and technologyRenormalization group021001 nanoscience & nanotechnologyTopology01 natural sciencesMatrix multiplicationsymbols.namesakeCondensed Matter - Strongly Correlated ElectronsQuantum Gases (cond-mat.quant-gas)Topological insulator0103 physical sciencessymbolsddc:530Quantum Physics (quant-ph)010306 general physics0210 nano-technologyHamiltonian (quantum mechanics)Condensed Matter - Quantum Gases
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Topological Signatures in the Electronic Structure of Graphene Spirals

2013

Topology is familiar mostly from mathematics, but also natural sciences have found its concepts useful. Those concepts have been used to explain several natural phenomena in biology and physics, and they are particularly relevant for the electronic structure description of topological insulators and graphene systems. Here, we introduce topologically distinct graphene forms - graphene spirals - and employ density-functional theory to investigate their geometric and electronic properties. We found that the spiral topology gives rise to an intrinsic Rashba spin-orbit splitting. Through a Hamiltonian constrained by space curvature, graphene spirals have topologically protected states due to tim…

PhysicsQuantum PhysicsMultidisciplinaryta114Condensed Matter - Mesoscale and Nanoscale PhysicsGrapheneFOS: Physical sciencesElectronic structureTopologyCurvatureArticlelaw.inventionsymbols.namesakelawTopological insulatorMesoscale and Nanoscale Physics (cond-mat.mes-hall)symbolsNatural scienceHamiltonian (quantum mechanics)Quantum Physics (quant-ph)Electronic properties
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Demonstration of a Plasmonic MMI Switch in 10-Gb/s True Data Traffic Conditions

2012

International audience; We report the first experimental performance evaluation of a 75-mu m-long plasmonic multimode interference switch that is hetero-integrated on a silicon-on-insulator platform, operating with 10-Gb/s data signals. The switch exhibits a 2.9-mu s response time and 44.5% modulation depth, while the extinction ratio between the ports alters from 5.4 to -1.5 dB for 35-mW electrical (switching) power. Error-free performance was achieved.

PhysicsSilicon photonicsExtinction ratiobusiness.industryTRANSMISSIONCHIPOptical cross-connectSilicon on insulatorResponse time02 engineering and technology01 natural sciencesOptical switchAtomic and Molecular Physics and OpticsElectronic Optical and Magnetic MaterialsPower (physics)010309 opticsAmplitude modulation020210 optoelectronics & photonics0103 physical sciences0202 electrical engineering electronic engineering information engineeringElectronic engineeringOptoelectronicsElectrical and Electronic Engineeringbusiness
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Antiferromagnetic Topological Insulator with Nonsymmorphic Protection in Two Dimensions

2019

The recent demonstration of topological states in antiferromagnets (AFMs) provides an exciting platform for exploring prominent physical phenomena and applications of antiferromagnetic spintronics. A famous example is the AFM topological insulator (TI) state, which, however, was still not observed in two dimensions. Using a tight-binding model and first-principles calculations, we show that, in contrast to previously observed AFM topological insulators in three dimensions, an AFM TI can emerge in two dimensions as a result of a nonsymmorphic symmetry that combines the twofold rotation symmetry and half-lattice translation. Based on the spin Chern number, Wannier charge centers, and gapless …

PhysicsSpintronicsCondensed matter physicsBand gapGeneral Physics and AstronomyCharge (physics)01 natural sciencesSymmetry (physics)Gapless playbackTopological insulator0103 physical sciencesAntiferromagnetismddc:530Condensed Matter::Strongly Correlated Electrons010306 general physicsSpin-½Physical Review Letters
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Magnetism-mediated transition between crystalline and higher-order topological phases in NpSb

2021

Merging the fields of topology and magnetism expands the scope of fundamental quantum phenomena with novel functionalities for topological spintronics enormously. Here, we theoretically demonstrate that ferromagnetism provides an efficient means to achieve a topological switching between crystalline and higher-order topological insulator phases in two dimensions. Using a tight-binding model and first-principles calculations, we identify layered NpSb as a long-awaited two-dimensional topological crystalline insulator with intrinsic ferromagnetic order with a band gap which is as large as 220 meV. We show that when ${\mathcal{M}}_{z}$ symmetry is preserved for the out of plane magnetization o…

PhysicsSpintronicsMagnetismBand gapPlane (geometry)Order (ring theory)02 engineering and technology021001 nanoscience & nanotechnologyTopology01 natural sciencesMagnetizationFerromagnetismTopological insulator0103 physical sciencesCondensed Matter::Strongly Correlated Electronsddc:530010306 general physics0210 nano-technology
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Defect states and excitations in a Mott insulator with orbital degrees of freedom: Mott-Hubbard gap versus optical and transport gaps in doped systems

2013

We address the role played by charged defects in doped Mott insulators with active orbital degrees of freedom. It is observed that defects feature a rather complex and rich physics, which is well captured by a degenerate Hubbard model extended by terms that describe crystal-field splittings and orbital-lattice coupling, as well as by terms generated by defects such as the Coulomb potential terms that act both on doped holes and on electrons within occupied orbitals at undoped sites. We show that the multiplet structure of the excited states generated in such systems by strong electron interactions is well described within the unrestricted Hartree-Fock approximation, once the symmetry breaki…

PhysicsStrongly Correlated Electrons (cond-mat.str-el)Hubbard modelCondensed matter physicsMott insulatorFOS: Physical sciencesOrder (ring theory)Condensed Matter PhysicsCoupling (probability)Electronic Optical and Magnetic MaterialsCondensed Matter - Strongly Correlated ElectronsAtomic orbitalNon-bonding orbitalCondensed Matter::Strongly Correlated ElectronsSpin (physics)Multiplet
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Effect of a Locally Repulsive Interaction on s-wave Superconductors

2016

The thermodynamic impact of the Coulomb repulsion on s-wave superconductors is analyzed via a rigorous study of equilibrium and ground states of the strong coupling BCS-Hubbard Hamiltonian. We show that the one-site electron repulsion can favor superconductivity at fixed chemical potential by increasing the critical temperature and/or the Cooper pair condensate density. If the one-site repulsion is not too large, a first or a second order superconducting phase transition can appear at low temperatures. The Meißner effect is shown to be rather generic but coexistence of superconducting and ferromagnetic phases is also shown to be feasible, for instance, near half-filling and at strong repul…

PhysicsSuperconductivityCondensed Matter::Quantum Gases82B20 82D55Phase transitionQuantum PhysicsCondensed matter physicsHubbard modelMott insulatorFOS: Physical sciencesStatistical and Nonlinear PhysicsMathematical Physics (math-ph)symbols.namesakeMeissner effectCondensed Matter::SuperconductivitysymbolsCooper pairHamiltonian (quantum mechanics)Quantum Physics (quant-ph)QuantumMathematical Physics
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Topological Hamiltonian as an exact tool for topological invariants

2012

We propose the concept of `topological Hamiltonian' for topological insulators and superconductors in interacting systems. The eigenvalues of topological Hamiltonian are significantly different from the physical energy spectra, but we show that topological Hamiltonian contains the information of gapless surface states, therefore it is an exact tool for topological invariants.

PhysicsSuperconductivityHigh Energy Physics - TheoryStrongly Correlated Electrons (cond-mat.str-el)FOS: Physical sciencesCondensed Matter PhysicsTopology01 natural sciences010305 fluids & plasmassymbols.namesakeCondensed Matter - Strongly Correlated ElectronsGapless playbackHigh Energy Physics - Theory (hep-th)Topological insulator0103 physical sciencessymbolsTopological invariantsGeneral Materials Science010306 general physicsHamiltonian (quantum mechanics)Mathematics::Symplectic GeometryEigenvalues and eigenvectorsJournal of Physics Condensed Matter
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