Search results for "Magneto"

showing 10 items of 919 documents

Neuroimaging and electrophysiology meet invasive neurostimulation for causal interrogations and modulations of brain states.

2020

Deep brain stimulation (DBS) has developed over the last twenty years into a highly effective evidenced-based treatment option for neuropsychiatric disorders. Moreover, it has become a fascinating tool to provide illustrative insights into the functioning of brain networks. New anatomical and pathophysiological models of DBS action have accelerated our understanding of neurological and psychiatric disorders and brain functioning. The description of the brain networks arose through the unique ability to illustrate long-range interactions between interconnected brain regions as derived from state-of-the-art neuroimaging (structural, diffusion, and functional MRI) and the opportunity to record…

Deep brain stimulationBrain networksComputer scienceCognitive Neurosciencemedicine.medical_treatmentDeep Brain StimulationMicroelectrode recordingNeuroimagingLocal field potentialElectroencephalography050105 experimental psychologyDiffusion MRIlcsh:RC321-57103 medical and health sciences0302 clinical medicineNeuroimagingmedicineHumans0501 psychology and cognitive scienceslcsh:Neurosciences. Biological psychiatry. NeuropsychiatryNeurostimulationFunctional MRImedicine.diagnostic_test05 social sciencesBrainMagnetoencephalographyElectroencephalographyMagnetoencephalographyMagnetic Resonance ImagingPathophysiologyNeuromodulation (medicine)Structural MRIMicroelectrodeElectrophysiologyNeurologyNeuroscience030217 neurology & neurosurgeryDiffusion MRINeuroImage
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EEG and MEG primers for tracking DBS network effects

2020

Deep brain stimulation (DBS) is an effective treatment method for a range of neurological and psychiatric disorders. It involves implantation of stimulating electrodes in a precisely guided fashion into subcortical structures and, at a later stage, chronic stimulation of these structures with an implantable pulse generator. While the DBS surgery makes it possible to both record brain activity and stimulate parts of the brain that are difficult to reach with non-invasive techniques, electroencephalography (EEG) and magnetoencephalography (MEG) provide complementary information from other brain areas, which can be used to characterize brain networks targeted through DBS. This requires, howeve…

Deep brain stimulationComputer scienceDeep Brain StimulationCognitive Neurosciencemedicine.medical_treatmentStimulationLocal field potentialElectroencephalographybehavioral disciplines and activities050105 experimental psychologylcsh:RC321-57103 medical and health sciences0302 clinical medicineNeural PathwaysmedicineHumans0501 psychology and cognitive sciencesSet (psychology)lcsh:Neurosciences. Biological psychiatry. Neuropsychiatrymedicine.diagnostic_test05 social sciencesBrainMagnetoencephalographyElectroencephalographyParkinson DiseaseMagnetoencephalographyElectrodes ImplantedDystonianervous systemNeurologyNeuroscience030217 neurology & neurosurgeryNeuroImage
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A New Software Tool for Design, Optimization, and Complete Analysis of Rotating Electrical Machines Windings

2015

In this paper, a new software tool developed by the authors for ac winding design, optimization, and complete analysis is presented. In particular, this software can be used as a valid aid in design and analysis for a wide variety of motor and generator windings with generic number of phases (including the case of those machines in which some slots are left empty), pole pairs, slot number, and so on. The calculation of winding factors and the evaluation of their harmonic distribution is also accomplished. The software is implemented in the MATLAB programming environment. By means of some examples, covering the most relevant winding types, the capabilities of this software will be shown. In …

Differential leakageTotal harmonic distortionElectromotive forceComputer scienceFluxSettore ING-IND/32 - Convertitori Macchine E Azionamenti ElettriciTopologyElectronic Optical and Magnetic MaterialswindingHarmonic analysisharmonicMagnetomotive forceElectromagnetic coilmagnetomotive force (MMF)Harmonicsflux densityWinding factorwinding factorsElectrical and Electronic Engineeringwinding connectionLeakage (electronics)IEEE Transactions on Magnetics
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Investigation of Co$_2$FeSi: The Heusler compound with Highest Curie Temperature and Magnetic Moment

2006

This work reports on structural and magnetic investigations of the Heusler compound Co$_2$FeSi. X-Ray diffraction and M\"o\ss bauer spectrometry indicate an ordered $L2_1$ structure. Magnetic measurements by means of X-ray magnetic circular dichroism and magnetometry revealed that this compound is, currently, the material with the highest magnetic moment ($6 \mu_B$) and Curie-temperature (1100K) in the classes of Heusler compounds as well as half-metallic ferromagnets.

DiffractionCondensed Matter - Materials ScienceMaterials sciencePhysics and Astronomy (miscellaneous)Condensed matter physicsMagnetic momentMagnetic circular dichroismMagnetometerMaterials Science (cond-mat.mtrl-sci)FOS: Physical sciencesengineering.materialHeusler compoundMass spectrometrylaw.inventionFerromagnetismlawengineeringCurie temperature
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Gilbert damping of CoFe-alloys

2019

We report structural, magnetic and dynamic properties of polycrystalline Coalt;subagt;xalt;/subagt;Fealt;subagt;1-xalt;/subagt;-alloy films on Sapphire, Silicon and MgO substrates across the full composition range, by using a Vector Network Analyser ferromagnetic resonance measurement technique (VNA-FMR), Superconducting Quantum Interference Device magnetometry (SQUID) and X-Ray Diffraction (XRD). In the approximate vicinity of 28% Co, we observe a minimum of the damping parameter, associated with a reduction in the density of states to a minimum value at the Fermi energy level. For films on all substrates, we find magnetic damping of the order of 4-5⋅10alt;supagt;-3alt;/supagt;, showing th…

DiffractionMaterials scienceAcoustics and Ultrasonics530 PhysicsMagnetometer02 engineering and technologySubstrate (electronics)01 natural scienceslaw.inventionCondensed Matter::Materials SciencelawCondensed Matter::Superconductivity0103 physical sciences010306 general physicsCondensed matter physicsFermi energy530 Physik021001 nanoscience & nanotechnologyCondensed Matter PhysicsFerromagnetic resonanceSurfaces Coatings and FilmsElectronic Optical and Magnetic MaterialsSQUIDMagnetic dampingDensity of states0210 nano-technologyJournal of Physics D: Applied Physics
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A step further in the comprehension of the magnetic coupling in gadolinium(III)-based carboxylate complexes

2013

Three new gadolinium(III) complexes of formula [Gd4(bta) 3(H2O)16]n·12nH2O (1), [Gd4(bta)3(H2O)12] n·18nH2O (2) and [Gd2(H 2bta)(bta)(H2O)2]n·4nH 2O (3) (H4bta = 1,2,4,5-benzenetetracarboxylic acid) have been synthesized and their structures determined by X-ray diffraction. 1 and 3 are three-dimensional compounds whereas 2 exhibits a two-dimensional structure. The ability of the bta4- to adopt different coordination modes accounts for these high dimensionalities although it precludes a rational structural design. The structures of 1-3 have in common the double oxo-carboxylate bridge between gadolinium(III) ions (μ-O: κ2O,O′) either as a discrete units (1 and 2) or as a chain (3) and one (3)…

DiffractionMetal–organic frameworksStereochemistryGadoliniumchemistry.chemical_elementMagneto–structural correlationsAtmospheric temperature rangeInductive couplingIonInorganic Chemistrychemistry.chemical_compoundCrystallographychemistryMaterials ChemistryAntiferromagnetismMetal-organic frameworkCarboxylatePhysical and Theoretical ChemistryMolecular magnetismGadolinium(III)Polyhedron 52: 321-332 (2013)
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A regular variational boundary model for free vibrations of magneto-electro-elastic structures

2011

In this paper a regular variational boundary element formulation for dynamic analysis of two-dimensional magneto-electro-elastic domains is presented. The method is based on a hybrid variational principle expressed in terms of generalized magneto-electro-elastic variables. The domain variables are approximated by using a superposition of weighted regular fundamental solutions of the static magneto-electro-elastic problem, whereas the boundary variables are expressed in terms of nodal values. The variational principle coupled with the proposed discretization scheme leads to the calculation of frequency-independent and symmetric generalized stiffness and mass matrices. The generalized stiffne…

DiscretizationApplied MathematicsMathematical analysisGeneral EngineeringPiezoelectricityMixed boundary conditionFree vibrationMass matrixSingular boundary methodTopologyMeshless methodMagnetoelasticityComputational MathematicsVariational principleFree boundary problemSettore ING-IND/04 - Costruzioni E Strutture AerospazialiBoundary element methodAnalysisHybrid boundaryelementmethodMathematicsStiffness matrix
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Damping effect on the ITER vacuum vessel displacements during slow downward locked and rotating asymmetric vertical displacement events

2018

Abstract In this paper, we present the electromechanical coupled analysis of the ITER vacuum vessel in case of slow downward locked and rotating Asymmetric VDEs. The numerical model for simulating the AVDE includes the asymmetric distribution of the halo currents obtained by a suitable 3D kink perturbation of a slow VDE downward computed by the 2D code DINA. In the case of a rotational AVDE, the rotation frequency of the kink asymmetry has been chosen to be ω = 2π × 5 rad/s. The model includes the mesh of the main passive components facing the plasma. The whole torus (360 degrees) has been discretized. It is shown that the very high complexity of the numerical model can be suitably treated.…

Discretizationmedia_common.quotation_subjectPerturbation (astronomy)Asymmetric VDE load01 natural sciencesAsymmetryVibration010305 fluids & plasmasEddy current0103 physical sciencesMagnetic DampingGeneral Materials ScienceVertical displacementmedia_commonCivil and Structural Engineering010302 applied physicsPhysicsMechanical EngineeringTorusMechanicsPlasmaITER vacuum vesselNuclear Energy and Engineeringvisual_artElectronic componentvisual_art.visual_art_mediumElectromagneto-mechanical couplingHaloMaterials Science (all)
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Electrically Driven Magnetic Domain Wall Rotation in Multiferroic Heterostructures to Manipulate Suspended On-Chip Magnetic Particles

2015

In this work, we experimentally demonstrate deterministic electrically driven, strain-mediated domain wall (DW) rotation in ferromagnetic Ni rings fabricated on piezoelectric [Pb(Mg1/3Nb2/3)O3]0.66-[PbTiO3]0.34 (PMN-PT) substrates. While simultaneously imaging the Ni rings with X-ray magnetic circular dichroism photoemission electron microscopy, an electric field is applied across the PMN-PT substrate that induces strain in the ring structures, driving DW rotation around the ring toward the dominant PMN-PT strain axis by the inverse magnetostriction effect. The DW rotation we observe is analytically predicted using a fully coupled micromagnetic/elastodynamic multiphysics simulation, which v…

Domain wall (magnetism)Materials scienceFerromagnetismMagnetic domainCondensed matter physicsMagnetic circular dichroismElectric fieldGeneral EngineeringGeneral Physics and AstronomyMagnetic nanoparticlesGeneral Materials ScienceMagnetostrictionRotationACS Nano
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Stability and magnetic properties of Fe double layers on Ir (111)

2018

We investigate the interplay between the structural reconstruction and the magnetic properties of Fe doublelayers on Ir (111)-substrate using first-principles calculations based on density functional theory and mapping of the total energies on an atomistic spin model. We show that, if a second Fe monolayer is deposited on Fe/Ir (111), the stacking may change from hexagonal close-packed to bcc (110)-like accompanied by a reduction of symmetry from trigonal to centered rectangular. Although the bcc-like surface has a lower coordination, we find that this is the structural ground state. This reconstruction has a major impact on the magnetic structure. We investigate in detail the changes in th…

Double layer (biology)Condensed Matter - Materials ScienceMaterials scienceCondensed matter physicsMagnetic structureStackingMaterials Science (cond-mat.mtrl-sci)FOS: Physical sciences02 engineering and technology021001 nanoscience & nanotechnologyMagnetocrystalline anisotropy01 natural sciencesCondensed Matter::Materials Science0103 physical sciencesMonolayerCondensed Matter::Strongly Correlated ElectronsDensity functional theory010306 general physics0210 nano-technologyGround stateAnisotropyPhysical Review B
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