Search results for " electrons"

showing 10 items of 1168 documents

Current Rectification in Junctions with Spin-Split Superconductors

2022

Spin-split superconductors exhibit an electron-hole asymmetric spin-resolved density of states, but the symmetry is restored upon averaging over spin. On the other hand, asymmetry appears again in tunneling junctions of spin-split superconductors with a spin-polarized barrier. As demonstrated recently in both theory and experiment, this fact leads to a particularly strong thermoelectric effect in superconductor-ferromagnet structures. In this work we show another important effect stemming from the electron-hole asymmetry: current rectification. We calculate the charge current in spin-polarized tunnel junctions of a normal metal and a spin-split superconductor with ac and dc voltage bias. In…

Superconductivity (cond-mat.supr-con)suprajohtavuusnanoelektroniikkaCondensed Matter - SuperconductivityCondensed Matter::Superconductivityspin (kvanttimekaniikka)FOS: Physical sciencesGeneral Physics and AstronomyCondensed Matter::Strongly Correlated ElectronsCondensed Matter::Mesoscopic Systems and Quantum Hall EffectsuprajohteetPhysical Review Applied
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Antiferromagnetism and the node structure of the superconducting order parameter of UPd Al

2000

The node structure of the superconducting order parameter of the heavy-fermion system is analyzed within the weak-coupling theory. A pairing interaction induced by the exchange of antiferromagnetic spin excitations is assumed as suggested by recent inelastic neutron scattering experiments and tunneling spectroscopy. The multi-sheeted Fermi surface is taken into account. Based on a model susceptibility for the simple antiferromagnetic structure of , line nodes result at the rim of the magnetic Brillouin zone.

SuperconductivityBrillouin zonePhysicsCondensed matter physicsPairingAntiferromagnetismCondensed Matter::Strongly Correlated ElectronsFermi surfaceCondensed Matter PhysicsMagnetic susceptibilityInelastic neutron scatteringElectronic Optical and Magnetic MaterialsSpin-½The European Physical Journal B
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Structure and superconductivity in LnNi2B2C: comparison of calculation and experiment

2001

Abstract The experimental relation between the superconducting transition temperature ( T c ) and lattice size for the lanthanide nickel borocarbides is clarified. The electronic density of states (DOS) at the Fermi energy is calculated by the LMTO method for selected non-magnetic lanthanides. The T c and the DOS are both shown to scale in the same way with a structural parameter that characterizes the bond angle in the NiB 4 tetrahedra. The results strongly support arguments that the suppression of superconductivity on going from smaller to larger lanthanides in the quaternary nickel borocarbides is structurally driven. A structure– T c relationship of this type is unusual for intermetalli…

SuperconductivityLanthanideCondensed matter physicsIntermetallicchemistry.chemical_elementFermi energyGeneral ChemistryCondensed Matter PhysicsCondensed Matter::Materials ScienceNickelMolecular geometryTight bindingchemistryCondensed Matter::SuperconductivityMaterials ChemistryTetrahedronCondensed Matter::Strongly Correlated ElectronsSolid State Communications
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Microwave electrodynamics of the antiferromagnetic superconductor GdBa2Cu3O7−δ

1999

The temperature dependence of the microwave surface impedance and conductivity are used to study the pairing symmetry and properties of cuprate superconductors. However, the superconducting properties can be hidden by the effects of paramagnetism and antiferromagnetic long-range order in the cuprates. To address this issue we have investigated the microwave electrodynamics of GdBa_2Cu_3O_{7-\delta}, a rare-earth cuprate superconductor which shows long-range ordered antiferromagnetism below T_N=2.2 K, the Neel temperature of the Gd ion subsystem. We measured the temperature dependence of the surface resistance and surface reactance of c-axis oriented epitaxial thin films at 10.4, 14.7 and 17…

SuperconductivityMaterials scienceCondensed matter physicsCondensed Matter - SuperconductivityEnergy Engineering and Power TechnologyCondensed Matter PhysicsElectronic Optical and Magnetic MaterialsParamagnetismCondensed Matter::SuperconductivityQuantum electrodynamicsPairingAntiferromagnetismCondensed Matter::Strongly Correlated ElectronsCuprateElectrical and Electronic EngineeringNéel temperatureMicrowaveSheet resistancePhysica C: Superconductivity
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Superconductivity and magnetism in Rb0.8Fe1.6Se2under pressure

2012

High-pressure magnetization, structural and 57Fe M\"ossbauer studies were performed on superconducting Rb0.8Fe1.6Se2.0 with Tc = 32.4 K. The superconducting transition temperature gradually decreases on increasing pressure up to 5.0 GPa followed by a marked step-like suppression of superconductivity near 6 GPa. No structural phase transition in the Fe vacancy-ordered superstructure is observed in synchrotron XRD studies up to 15.6 GPa, while the M\"ossbauer spectra above 5 GPa reveal the appearance of a new paramagnetic phase and significant changes in the magnetic and electronic properties of the dominant antiferromagnetic phase, coinciding with the disappearance of superconductivity. Thes…

SuperconductivityMaterials scienceCondensed matter physicsMagnetismCondensed Matter PhysicsSynchrotronPhysics::GeophysicsElectronic Optical and Magnetic Materialslaw.inventionCondensed Matter::Materials ScienceParamagnetismMagnetizationlawCondensed Matter::SuperconductivityPhase (matter)AntiferromagnetismCondensed Matter::Strongly Correlated ElectronsSuperstructure (condensed matter)Physical Review B
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The effect of Fe doping on superconductivity in ZrRuP

2011

Abstract This work reports the structure and superconducting properties of the superconductor ZrRuP doped with Fe; the ZrRu 1− x Fe x P solid solution was investigated by means of X-ray powder diffraction, SQUID magnetometry and Mosbauer spectroscopy. It is shown that the modification of the superconducting properties by doping with Fe is similar to the effect of chemical pressure and that the Fe doped compounds do not show any magnetic ordering.

SuperconductivityMaterials scienceCondensed matter physicsMagnetometerDopingGeneral ChemistryCondensed Matter Physicslaw.inventionSQUIDCondensed Matter::Materials SciencelawFe dopedCondensed Matter::SuperconductivityMaterials ChemistryCondensed Matter::Strongly Correlated ElectronsSpectroscopyPowder diffractionSolid solutionSolid State Communications
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Crystal Structure of Heusler Compounds

2013

Heusler compounds are promising materials in many fields of contemporary research. The spectrum of their possible applications ranges from magnetic and magneto-mechanical materials over semiconductors and thermoelectrics to superconductors. An important feature of the Heusler compounds is the possibility of controlling the valence electron concentration by partial substitution of elements. On the other hand, the properties also depend on the degree of ordering of the crystal structure. In general, Heusler compounds crystallize in the Cu2MnAl-type structure but in many cases certain types of disorder are observed. In this chapter, a detailed description of the crystal structure as well as di…

SuperconductivityMaterials scienceCondensed matter physicsSpin polarizationbusiness.industryCrystal structureengineering.materialThermoelectric materialsHeusler compoundCondensed Matter::Materials ScienceSemiconductorengineeringCondensed Matter::Strongly Correlated ElectronsWyckoff positionsValence electronbusiness
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Ni-based superconductor: Heusler compoundZrNi2Ga

2008

This work reports on the novel Heusler superconductor ZrNi2Ga. Compared to other nickel-based superconductors with Heusler structure, ZrNi2Ga exhibits a relatively high superconducting transition temperature of Tc=2.9 K and an upper critical field of 1.5 T. Electronic structure calculations show that this relatively high transition temperature is caused by a van Hove singularity, which leads to an enhanced density of states at the Fermi energy. The van Hove singularity originates from a higher order valence instability at the L-point in the electronic structure. The enhanced density of states at the Fermi level was confirmed by specific heat and susceptibility measurements. Although many He…

SuperconductivityMaterials scienceCondensed matter physicsVan Hove singularityFermi levelFermi energyengineering.materialCondensed Matter PhysicsHeusler compoundElectronic Optical and Magnetic MaterialsCondensed Matter::Materials Sciencesymbols.namesakeFerromagnetismCondensed Matter::SuperconductivityDensity of statesengineeringsymbolsCondensed Matter::Strongly Correlated ElectronsCritical fieldPhysical Review B
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Trapping of quasiparticles of a nonequilibrium superconductor

2000

We have performed experiments where hot electrons are extracted from a normal metal into a superconductor through a tunnel junction. We have measured the cooling performance of such NIS junctions, especially in the cases where another normal metal electrode, a quasiparticle trap, is attached to the superconductor at different distances from the junction in direct metal-to-metal contact or through an oxide barrier. The direct contact at a submicron distance allows superior thermalization of the superconductor. We have analyzed theoretically the heat transport in this system. From both experiment and theory, it appears that NIS junctions can be used as refrigerators at low temperatures only w…

SuperconductivityMaterials sciencePhysics and Astronomy (miscellaneous)Condensed matter physicsOxideNon-equilibrium thermodynamicsCryogenicsTrappingCondensed Matter::Mesoscopic Systems and Quantum Hall Effectchemistry.chemical_compoundThermalisationchemistryTunnel junctionCondensed Matter::SuperconductivityQuasiparticleCondensed Matter::Strongly Correlated ElectronsApplied Physics Letters
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Efficient electronic cooling in heavily doped silicon by quasiparticle tunneling

2001

Cooling of electrons in a heavily doped silicon by quasiparticle tunneling using a superconductor–semiconductor–superconductor double-Schottky-junction structure is demonstrated at low temperatures. In this work, we use Al as the superconductor and thin silicon-on-insulator (SOI) film as the semiconductor. The electron–phonon coupling is measured for the SOI film and the low value of the coupling is shown to be the origin of the observed significant cooling effect.

SuperconductivityMaterials sciencePhysics and Astronomy (miscellaneous)Condensed matter physicsSiliconPhysics::Instrumentation and Detectorsbusiness.industrySchottky effectDopingchemistry.chemical_elementSilicon on insulatorCondensed Matter::Mesoscopic Systems and Quantum Hall EffectCondensed Matter::Materials ScienceSemiconductorchemistryCondensed Matter::SuperconductivityQuasiparticleCondensed Matter::Strongly Correlated ElectronsbusinessQuantum tunnellingApplied Physics Letters
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