Search results for "Zeeman energy"

showing 4 items of 4 documents

Magnon transport in the presence of antisymmetric exchange in a weak antiferromagnet

2021

The Dzyaloshinskii-Moriya interaction (DMI) is at the heart of many modern developments in the research field of spintronics. DMI is known to generate noncollinear magnetic textures, and can take two forms in antiferromagnets: homogeneous or inter-sublattice, leading to small, canted moments and inhomogeneous or intra-sublattice, leading to formation of chiral structures. In this work, we first determine the strength of the effective field created by the DMI, using SQUID based magnetometry and transport measurements, in thin films of the antiferromagnetic iron oxide hematite, $\alpha$-Fe$_2$O$_3$. We demonstrate that DMI additionally introduces reconfigurability in the long distance magnon …

PhysicsCondensed Matter - Materials ScienceAntisymmetric exchangeField (physics)SpintronicsCondensed matter physicsMagnetometerMagnonMaterials Science (cond-mat.mtrl-sci)FOS: Physical sciences02 engineering and technology021001 nanoscience & nanotechnologyCondensed Matter Physics01 natural sciencesElectronic Optical and Magnetic MaterialsMagnetic fieldlaw.inventionCondensed Matter::Materials Sciencelaw0103 physical sciencesAntiferromagnetismCondensed Matter::Strongly Correlated ElectronsZeeman energy010306 general physics0210 nano-technologyJournal of Magnetism and Magnetic Materials
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Element-specific magnetic properties of mixed 3d−4f metallacrowns

2018

Single molecule magnets comprising rare earth metals are of high interest due to the unquenched orbital moments of the rare earth ions that result in a large energy barrier for magnetization reversal. We investigate the magnetic properties of polynuclear $3d\text{\ensuremath{-}}4f15$-MC-5 metallacrowns using x-ray magnetic circular dichroism of powder samples at a temperature of 7 K in a magnetic field of 7 T. The sum rule analysis reveals element-specific spin and orbital moments. The magnetic moments of the $3d$ transition metal Ni(II) ions are coupled antiferromagnetically to each other and contribute only little to the total molecular moment. The spin and orbital moments of the rare ear…

PhysicsCondensed matter physicsMagnetic moment010405 organic chemistryMagnetic circular dichroism010402 general chemistry01 natural sciences0104 chemical sciencesMagnetic fieldDipoleMagnetic anisotropyMagnetZeeman energySpin (physics)Physical Review B
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Automotive domain wall propagation in ferromagnetic rings

2015

Automotive domain wall propagation is a self-propelling motion utilizing the energy stored in a particular energy reservoir of the spin structure to speed up domain wall beyond its equilibrium value given by external driving force and damping. Such a concept of DW motion is of great interest due to recent development of spintronic devices based on domain walls, where automotion could be used to assist or prevent domain wall pinning at low driving fields1-2. In turn, most of studies so far have been devoted to the automotion invoked by DW transformations from metastable to stable states3-4; appearing at sufficiently high magnetic fields strong and enough to trigger domain wall spin structure…

PhysicsDomain wall (magnetism)Magnetic domainSpintronicsCondensed matter physicsZeeman energySingle domainMagnetostaticsMagnetic fluxMagnetic field2015 IEEE Magnetics Conference (INTERMAG)
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Spin-lattice relaxation of deuterated methyl groups: Implications of the pauli principle

1999

The high-field spin-lattice relaxation of deuterated methyl groups undergoing rotational tunneling is investigated theoretically. It is found that for systems showing a tunneling frequency comparable to accessible Larmor frequencies the relaxation to equilibrium of the Zeeman energy does not follow a simple exponential time dependence even in powdered samples due to a finite coupling to the relaxation of the tunneling system. This finding contrasts to the high-temperature behavior of reorienting methyl groups which undergo simple exponential relaxation. The nonexponentiality has its origin in the statistical coupling of the three deuteron spins due to the Pauli principle.

symbols.namesakePauli exclusion principleDeuteriumCondensed matter physicsSolid-state physicsSpinsChemistrysymbolsSpin–lattice relaxationRelaxation (physics)Zeeman energyAtomic and Molecular Physics and OpticsQuantum tunnellingApplied Magnetic Resonance
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