0000000000107921

AUTHOR

Timo Hyart

showing 14 related works from this author

Physical principles of the amplification of electromagnetic radiation due to negative electron masses in a semiconductor superlattice

2015

In a superlattice placed in crossed electric and magnetic fields, under certain conditions, the inversion of electron population can appear at which the average energy of electrons is above the middle of the miniband and the effective mass of the electron is negative. This is the implementation of the negative effective mass amplifier and generator (NEMAG) in the superlattice. It can result in the amplification and generation of terahertz radiation even in the absence of negative differential conductivity.

PhysicsPhysics and Astronomy (miscellaneous)Condensed matter physicsSolid-state physicsCondensed Matter - Mesoscale and Nanoscale Physicsta114Terahertz radiationAmplifierSuperlatticesemiconductor superlatticeFOS: Physical sciencesfood and beverages02 engineering and technologyElectron021001 nanoscience & nanotechnologyCondensed Matter::Mesoscopic Systems and Quantum Hall Effect01 natural sciencesElectromagnetic radiation3. Good healthMagnetic fieldEffective mass (solid-state physics)0103 physical sciencesMesoscale and Nanoscale Physics (cond-mat.mes-hall)010306 general physics0210 nano-technologyJETP Letters
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Momentum-space structure of surface states in a topological semimetal with a nexus point of Dirac lines

2016

Three-dimensional topological semimetals come in different variants, either containing Weyl points or Dirac lines. Here we describe a more complicated momentum-space topological defect where several separate Dirac lines connect with each other, forming a momentum-space equivalent of the real-space nexus considered before for helium-3. Close to the nexus the Dirac lines exhibit a transition from type I to type II lines. We consider a general model of stacked honeycomb lattices with the symmetry of Bernal (AB) stacked graphite and show that the structural mirror symmetries in such systems protect the presence of the Dirac lines, and also naturally lead to the formation of the nexus. By the bu…

PhysicsSurface (mathematics)topological semimetalsDirac linesCondensed Matter - Mesoscale and Nanoscale Physicsta114Dirac (software)Honeycomb (geometry)FOS: Physical sciencesPosition and momentum space02 engineering and technologyType (model theory)021001 nanoscience & nanotechnologyTopology01 natural sciencesSymmetry (physics)Topological defectQuantum mechanics0103 physical sciencesHomogeneous spaceMesoscale and Nanoscale Physics (cond-mat.mes-hall)010306 general physics0210 nano-technologyPhysical Review B
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Competition of electron-phonon mediated superconductivity and Stoner magnetism on a flat band

2018

The effective attractive interaction between electrons, mediated by electron-phonon coupling, is a well-established mechanism of conventional superconductivity. In metals exhibiting a Fermi surface, the critical temperature of superconductivity is exponentially smaller than the characteristic phonon energy. Therefore, such superconductors are found only at temperatures below a few kelvin. Systems with flat energy bands have been suggested to cure the problem and provide a route to room-temperature superconductivity, but previous studies are limited to only BCS models with an effective attractive interaction. Here we generalize Eliashberg's theory of strong-coupling superconductivity to syst…

suprajohtavuusMagnetismFOS: Physical sciences02 engineering and technologyElectron01 natural sciencesSuperconductivity (cond-mat.supr-con)Condensed Matter::Superconductivity0103 physical sciencessurface statesmagnetismi010306 general physicsQuantumPhase diagramSuperconductivityPhysicsta114Condensed matter physicssuperconductivityCondensed Matter - SuperconductivityFermi surface021001 nanoscience & nanotechnologyCoupling (physics)magnetismodd-frequency superconductivityelectron-phonon coupling0210 nano-technologyDispersion (chemistry)phase diagrams
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Robust semi-Dirac points and unconventional topological phase transitions in doped superconducting Sr2IrO4 tunnel coupled to t2g electron systems

2017

Semi-Dirac fermions are known to exist at the critical points of topological phase transitions requiring fine-tuning of the parameters. We show that robust semi-Dirac points can appear in a heterostructure consisting of superconducting Sr2IrO4 and a t2g electron system (t2g-ES) without fine-tuning. They are topologically stable in the presence of the symmetries of the model, metallic t2g-ES and a single active band in Sr2IrO4. If the t2g metal is coupled to two different layers of Sr2IrO4 (effectively a multiband superconductor) in a three-layer-structure the semi-Dirac points can split into two stable Dirac points with opposite chiralities. A similar transition can be achieved if the t2g-E…

SuperconductivityPhysicsPhase transitionCondensed Matter - SuperconductivityDirac (software)General Physics and AstronomyFOS: Physical sciencesHeterojunctionElectronFermionTopology01 natural scienceslcsh:QC1-999010305 fluids & plasmasSuperconductivity (cond-mat.supr-con)0103 physical sciencesHomogeneous spaceCondensed Matter::Strongly Correlated Electrons010306 general physicslcsh:PhysicsPhase diagram
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Mapping an electron wave function by a local electron scattering probe

2015

A technique is developed which allows for the detailed mapping of the electronic wave function in two-dimensional electron gases with low-temperature mobilities up to $15\times {10}^{6}\;{\mathrm{cm}}^{2}\;{{\rm{V}}}^{-1}\;{{\rm{s}}}^{-1}$. Thin ('delta') layers of aluminium are placed into the regions where the electrons reside. This causes electron scattering which depends very locally on the amplitude of the electron wave function at the position of the Al δ-layer. By changing the distance of this layer from the interface we map the shape of the wave function perpendicular to the interface. Despite having a profound effect on the electron mobiliy, the δ-layers do not cause a widening of …

2DEG; Heterostructures; Electron wave function; GaAs/AlGaAs; Electron scatteringFOS: Physical sciencesGeneral Physics and Astronomychemistry.chemical_element02 engineering and technologyElectronQuantum Hall effect01 natural sciencesGaAs/AlGaAsElectron wave functionAluminiumPosition (vector)2DEGMesoscale and Nanoscale Physics (cond-mat.mes-hall)0103 physical sciencesPerpendicularHeterostructuresElectron scattering010306 general physicsWave functionPhysicsCondensed Matter - Mesoscale and Nanoscale PhysicsCondensed matter physics021001 nanoscience & nanotechnologyAmplitudechemistryheterostructureselectron scattering0210 nano-technologyElectron scatteringelectron wave function
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Collective amplitude mode fluctuations in a flat band superconductor formed at a semimetal surface

2016

We study the fluctuations of the amplitude (i.e., the Higgs-Anderson) mode in a superconducting system of coupled Dirac particles proposed as a model for possible surface or interface superconductivity in rhombohedral graphite. This system also serves as a generic model of a topological semimetal with an interaction-driven transition on its surface. We show that the absence of Fermi energy and vanishing of the excitation gap of the collective amplitude mode in the model leads to a large fluctuation contribution to thermodynamic quantities, such as the heat capacity. As a consequence, the mean-field theory becomes inaccurate, indicating that the interactions lead to a strongly correlated sta…

SuperconductivityPhysicsSurface (mathematics)ta114Condensed matter physicsDirac (software)Fermi energyamplitude mode01 natural sciencesHeat capacitysemimetalsSemimetal010305 fluids & plasmasROOM-TEMPERATUREAmplitude0103 physical sciences010306 general physicsphysicsExcitationPhysical Review B
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Moir\'e with flat bands is different

2019

Recent experimental discoveries of superconductivity and other exotic electronic states in twisted bilayer graphene (TBG) call for a reconsideration of our traditional theories of these states, usually based on the assumption of the presence of a Fermi surface. Here we show how such developments may even help us finding mechanisms of increasing the critical temperature of superconductivity towards the room temperature.

OpticsMaterials sciencesuprajohtavuusbusiness.industryCondensed Matter - SuperconductivityGeneral Physics and AstronomyMoiré patternbusinesssuprajohteet
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Giant Negative Magnetoresistance Driven by Spin-Orbit Coupling at theLaAlO3/SrTiO3Interface

2015

The LaAlO3=SrTiO3 interface hosts a two-dimensional electron system that is unusually sensitive to the application of an in-plane magnetic field. Low-temperature experiments have revealed a giant negative magnetoresistance (dropping by 70%), attributed to a magnetic-field induced transition between interacting phases of conduction electrons with Kondo-screened magnetic impurities. Here we report on experiments over a broad temperature range, showing the persistence of the magnetoresistance up to the 20 K range—indicative of a single-particle mechanism. Motivated by a striking correspondence between the temperature and carrier density dependence of our magnetoresistance measurements we propo…

PhysicsElectron densityColossal magnetoresistanceCondensed matter physicsMagnetoresistanceScatteringGeneral Physics and AstronomySpin–orbit interactionElectronAtmospheric temperature rangeCondensed Matter::Mesoscopic Systems and Quantum Hall EffectMagnetic fieldCondensed Matter::Materials ScienceCondensed Matter::Strongly Correlated ElectronsPhysical Review Letters
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Confinement-deconfinement transition due to spontaneous symmetry breaking in quantum Hall bilayers

2015

Band-inverted electron-hole bilayers support quantum spin Hall insulator and exciton condensate phases. We investigate such a bilayer in an external magnetic field. We show that the interlayer correlations lead to formation of a helical quantum Hall exciton condensate state. In contrast to the chiral edge states of the quantum Hall exciton condensate in electron-electron bilayers, existence of the counterpropagating edge modes results in formation of a ground state spin-texture not supporting gapless single-particle excitations. This feature has deep consequences for the low energy behavior of the system. Namely, the charged edge excitations in a sufficiently narrow Hall bar are confined, i…

High Energy Physics - TheorySpontaneous symmetry breakingHigh Energy Physics::LatticeScienceFOS: Physical sciencesGeneral Physics and Astronomy02 engineering and technologyQuantum Hall effect01 natural sciencesDeconfinementGeneral Biochemistry Genetics and Molecular BiologyArticleQuantum spin Hall effectMesoscale and Nanoscale Physics (cond-mat.mes-hall)0103 physical sciences010306 general physicsSpin (physics)PhysicsCondensed Matter::Quantum GasesMultidisciplinaryta114Condensed matter physicsCondensed Matter - Mesoscale and Nanoscale PhysicsCondensed Matter::OtherQHall effectGeneral Chemistry021001 nanoscience & nanotechnologyCondensed Matter::Mesoscopic Systems and Quantum Hall Effect3. Good healthMagnetic fieldHigh Energy Physics - Theory (hep-th)Fractional quantum Hall effectAtomic physics0210 nano-technologyGround statebilayers
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Existence of zero-energy impurity states in different classes of topological insulators and superconductors and their relation to topological phase t…

2015

We consider the effects of impurities on topological insulators and superconductors. We start by identifying the general conditions under which the eigenenergies of an arbitrary Hamiltonian H belonging to one of the Altland-Zirnbauer symmetry classes undergo a robust zero energy crossing as a function of an external parameter which can be, for example, the impurity strength. We define a generalized root of \det H, and use it to predict or rule out robust zero-energy crossings in all symmetry classes. We complement this result with an analysis based on almost degenerate perturbation theory, which allows a derivation of the asymptotic low-energy behavior of the ensemble averaged density of st…

Phase transitionFOS: Physical sciencesZero-point energyPosition and momentum space02 engineering and technology01 natural sciencesimpuritiessymbols.namesakeCondensed Matter::SuperconductivityQuantum mechanicsMesoscale and Nanoscale Physics (cond-mat.mes-hall)0103 physical sciences010306 general physicsPhysicstopological superconductorsCondensed Matter - Mesoscale and Nanoscale Physicsta114Degenerate energy levels021001 nanoscience & nanotechnologytopological insulatorsTopological insulatorDensity of statessymbols0210 nano-technologyHamiltonian (quantum mechanics)Random matrixepäpuhtaudetPhysical Review B
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Enhancing triplet superconductivity by the proximity to a singlet superconductor in oxide heterostructures

2016

We show how in principle a coherent coupling between two superconductors of opposite parity can be realized in a three-layer oxide heterostructure. Due to strong intraionic spin-orbit coupling in the middle layer, singlet Cooper pairs are converted into triplet ones and vice versa. This results in a large enhancement of the triplet superconductivity, persisting well above the native triplet critical temperature.

OxideFOS: Physical sciences02 engineering and technology01 natural sciencesSuperconductivity (cond-mat.supr-con)Condensed Matter - Strongly Correlated Electronschemistry.chemical_compound0103 physical sciencesoxide heterostructureSinglet stateTriplet state010306 general physicsPhysicsSuperconductivityStrongly Correlated Electrons (cond-mat.str-el)Condensed matter physicsta114singlet Cooper pairsCondensed Matter - SuperconductivityParity (physics)Heterojunction021001 nanoscience & nanotechnology3. Good healthchemistrySinglet fissiontriplet superconductivityCooper pair0210 nano-technologyphysicsPhysical Review B
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Two topologically distinct Dirac-line semimetal phases and topological phase transitions in rhombohedrally stacked honeycomb lattices

2018

Three-dimensional topological semimetals can support band crossings along one-dimensional curves in the momentum space (nodal lines or Dirac lines) protected by structural symmetries and topology. We consider rhombohedrally (ABC) stacked honeycomb lattices supporting Dirac lines protected by time-reversal, inversion and spin rotation symmetries. For typical band structure parameters there exists a pair of nodal lines in the momentum space extending through the whole Brillouin zone in the stacking direction. We show that these Dirac lines are topologically distinct from the usual Dirac lines which form closed loops inside the Brillouin zone. In particular, an energy gap can be opened only by…

PhysicsPhase transitionStatistical Mechanics (cond-mat.stat-mech)Condensed Matter - Mesoscale and Nanoscale PhysicsFOS: Physical sciencesPosition and momentum space02 engineering and technology021001 nanoscience & nanotechnologyCondensed Matter PhysicsTopology01 natural sciencesAtomic and Molecular Physics and OpticsBrillouin zone0103 physical sciencesHomogeneous spaceMesoscale and Nanoscale Physics (cond-mat.mes-hall)PerpendicularTopological orderGeneral Materials Science010306 general physics0210 nano-technologyElectronic band structureCondensed Matter - Statistical MechanicsSurface states
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Momentum-space structure of surface states in a topological semimetal with a nexus point of Dirac lines

2016

Three-dimensional topological semimetals come in different variants, either containing Weyl points or Dirac lines. Here we describe a more complicated momentum-space topological defect where several separate Dirac lines connect with each other, forming a momentum-space equivalent of the real-space nexus considered before for helium-3. Close to the nexus the Dirac lines exhibit a transition from type I to type II lines. We consider a general model of stacked honeycomb lattices with the symmetry of Bernal (AB) stacked graphite and show that the structural mirror symmetries in such systems protect the presence of the Dirac lines, and also naturally lead to the formation of the nexus. By the bu…

topological semimetalsDirac linesWeylin puolimetallitDiracin yhtälöpuolimetallitkvanttimekaniikkatopologiset avaruudet
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Collective amplitude mode fluctuations in a flat band superconductor formed at a semimetal surface

2016

We study the fluctuations of the amplitude (i.e. the Higgs-Anderson) mode in a superconducting system of coupled Dirac particles proposed as a model for possible surface or interface superconductivity in rhombohedral graphite. This system also serves as a generic model of a topological semimetal with an interaction driven transition on its surface. We show that the absence of Fermi energy and vanishing of the excitation gap of the collective amplitude mode in the model leads to a large fluctuation contribution to thermodynamic quantities such as the heat capacity. As a consequence, the mean-field theory becomes inaccurate indicating that the interactions lead to a strongly correlated state.…

puolimetallitamplitude modefysiikka
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