0000000000179992

AUTHOR

Dongwook Go

showing 8 related works from this author

Imprinting and driving electronic orbital magnetism using magnons

2020

Magnons, as the most elementary excitations of magnetic materials, have recently emerged as a prominent tool in electrical and thermal manipulation and transport of spin, and magnonics as a field is considered as one of the pillars of modern spintronics. On the other hand, orbitronics, which exploits the orbital degree of freedom of electrons rather than their spin, emerges as a powerful platform in efficient design of currents and redistribution of angular momentum in structurally complex materials. Here, we uncover a way to bridge the worlds of magnonics and electronic orbital magnetism, which originates in the fundamental coupling of scalar spin chirality, inherent to magnons, to the orb…

QB460-466Condensed Matter - Strongly Correlated ElectronsCondensed Matter::Materials ScienceStrongly Correlated Electrons (cond-mat.str-el)Condensed Matter::OtherPhysicsQC1-999FOS: Physical sciencesCondensed Matter::Strongly Correlated Electronsddc:530Astrophysics530
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Orbital Rashba effect in a surface-oxidized Cu film

2020

Recent experimental observation of an unexpectedly large current-induced spin-orbit torque in surface oxidized Cu on top of a ferromagnet pointed to a possibly prominent role of the orbital Rashba effect (ORE) in this system. Here, we use first principles methods to investigate the ORE in a system of oxygen monolayer deposited on top of a Cu(111) film. We show that surface oxidization of the Cu film leads to a gigantic enhancement of the ORE near the Fermi energy. The resulting chiral orbital texture in the momentum space is exceptionally strong, reaching as much as $\ensuremath{\sim}0.5\ensuremath{\hbar}$ in magnitude. We find that resonant hybridization between O $p$ states and Cu $d$ sta…

Materials scienceCondensed Matter - Mesoscale and Nanoscale PhysicsQuantitative Biology::Neurons and CognitionCondensed matter physicsPhotoemission spectroscopyFOS: Physical sciencesPosition and momentum spaceFermi energyCondensed Matter::Materials ScienceFerromagnetismMesoscale and Nanoscale Physics (cond-mat.mes-hall)ddc:530Texture (crystalline)Spin (physics)Order of magnitudeRashba effectPhysical Review B
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Efficient conversion of orbital Hall current to spin current for spin-orbit torque switching

2021

Spin Hall effect, an electric generation of spin current, allows for efficient control of magnetization. Recent theory revealed that orbital Hall effect creates orbital current, which can be much larger than spin Hall-induced spin current. However, orbital current cannot directly exert a torque on a ferromagnet, requiring a conversion process from orbital current to spin current. Here, we report two effective methods of the conversion through spin-orbit coupling engineering, which allows us to unambiguously demonstrate orbital-current-induced spin torque, or orbital Hall torque. We find that orbital Hall torque is greatly enhanced by introducing either a rare-earth ferromagnet Gd or a Pt in…

QC1-999FOS: Physical sciencesGeneral Physics and AstronomyApplied Physics (physics.app-ph)AstrophysicsMagnetizationHall effectMesoscale and Nanoscale Physics (cond-mat.mes-hall)ddc:530Spin (physics)CouplingPhysicsCondensed Matter - Materials ScienceCondensed matter physicsSpintronicsCondensed Matter - Mesoscale and Nanoscale PhysicsPhysicsMaterials Science (cond-mat.mtrl-sci)Physics - Applied PhysicsCondensed Matter::Mesoscopic Systems and Quantum Hall EffectQB460-466FerromagnetismSpin Hall effectCondensed Matter::Strongly Correlated ElectronsAstrophysics::Earth and Planetary AstrophysicsCurrent (fluid)
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Observation of long-range orbital transport and giant orbital torque

2022

AbstractModern spintronics relies on the generation of spin currents through spin-orbit coupling. The spin-current generation has been believed to be triggered by current-induced orbital dynamics, which governs the angular momentum transfer from the lattice to the electrons in solids. The fundamental role of the orbital response in the angular momentum dynamics suggests the importance of the orbital counterpart of spin currents: orbital currents. However, evidence for its existence has been elusive. Here, we demonstrate the generation of giant orbital currents and uncover fundamental features of the orbital response. We experimentally and theoretically show that orbital currents propagate o…

Condensed Matter - Materials ScienceCondensed Matter - Mesoscale and Nanoscale PhysicsMesoscale and Nanoscale Physics (cond-mat.mes-hall)Materials Science (cond-mat.mtrl-sci)FOS: Physical sciencesGeneral Physics and AstronomyCondensed Matter::Strongly Correlated ElectronsAstrophysics::Earth and Planetary AstrophysicsCommunications Physics
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Theory of Current-Induced Angular Momentum Transfer Dynamics in Spin-Orbit Coupled Systems.

2020

Motivated by the importance of understanding competing mechanisms to current-induced spin-orbit torque in complex magnets, we develop a unified theory of current-induced spin-orbital coupled dynamics. The theory describes angular momentum transfer between different degrees of freedom in solids, e.g., the electron orbital and spin, the crystal lattice, and the magnetic order parameter. Based on the continuity equations for the spin and orbital angular momenta, we derive equations of motion that relate spin and orbital current fluxes and torques describing the transfer of angular momentum between different degrees of freedom. We then propose a classification scheme for the mechanisms of the c…

PhysicsCondensed Matter - Materials ScienceAngular momentumCondensed Matter - Mesoscale and Nanoscale PhysicsCondensed matter physicsEquations of motionMaterials Science (cond-mat.mtrl-sci)FOS: Physical sciencesArticleMagnetizationFerromagnetismHall effectMesoscale and Nanoscale Physics (cond-mat.mes-hall)Spin Hall effectTorqueddc:530Density functional theoryAstrophysics::Earth and Planetary AstrophysicsPhysical review research
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Orbitronics: orbital currents in solids

2021

In solids, electronic Bloch states are formed by atomic orbitals. While it is natural to expect that orbital composition and information about Bloch states can be manipulated and transported, in analogy to the spin degree of freedom extensively studied in past decades, it has been assumed that orbital quenching by the crystal field prevents significant dynamics of orbital degrees of freedom. However, recent studies reveal that an orbital current, given by the flow of electrons with a finite orbital angular momentum, can be electrically generated and transported in wide classes of materials despite the effect of orbital quenching in the ground state. Orbital currents also play a fundamental …

PhysicsCondensed Matter - Materials ScienceMagnetization dynamicsAngular momentumCondensed Matter - Mesoscale and Nanoscale PhysicsField (physics)Condensed matter physicsMagnetism530 PhysicsMaterials Science (cond-mat.mtrl-sci)FOS: Physical sciencesGeneral Physics and Astronomy530 PhysikAtomic orbitalHall effectMesoscale and Nanoscale Physics (cond-mat.mes-hall)Spin Hall effectAstrophysics::Earth and Planetary AstrophysicsSpin (physics)
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Harnessing Orbital-to-Spin Conversion of Interfacial Orbital Currents for Efficient Spin-Orbit Torques.

2020

The system generates two errors of "Bad character(s) in field Abstract" for no reason. Please refer to the manuscript for the full abstract.

Materials science530 PhysicsMagnetismFOS: Physical sciencesGeneral Physics and AstronomyNon-equilibrium thermodynamicschemistry.chemical_elementInverse01 natural sciences0103 physical sciencesddc:530010306 general physicsSpin (physics)Spin-½CouplingPhysicsCondensed Matter - Materials ScienceSpintronicsCondensed matter physicsMaterials Science (cond-mat.mtrl-sci)530 PhysikCoupling (probability)OrbitThuliumchemistryOrbit (dynamics)Condensed Matter::Strongly Correlated Electrons
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Interplay of Dzyaloshinskii-Moriya and Kitaev interactions for magnonic properties of Heisenberg-Kitaev honeycomb ferromagnets

2020

The properties of Kitaev materials are attracting ever increasing attention owing to their exotic properties. In realistic two-dimensional materials, Kitaev interaction is often accompanied by the Dzyloshinskii-Moriya interaction, which poses a challenge of distinguishing their magnitude separately. In this work, we demonstrate that it can be done by accessing magnonic transport properties. By studying honeycomb ferromagnets exhibiting Dzyaloshinskii-Moriya and Kitaev interactions simultaneously, we reveal non-trivial magnonic topological properties accompanied by intricate magnonic transport characteristics as given by thermal Hall and magnon Nernst effects. We also investigate the effect …

PhysicsCondensed matter physicsStrongly Correlated Electrons (cond-mat.str-el)MagnonHoneycomb (geometry)FOS: Physical sciences02 engineering and technologyPhysik (inkl. Astronomie)021001 nanoscience & nanotechnology01 natural sciencesTopological quantum computerSymmetry (physics)Magnetic fieldCondensed Matter - Strongly Correlated Electronssymbols.namesakeFerromagnetismanyons0103 physical sciencessymbolsddc:530Nernst equationCondensed Matter::Strongly Correlated Electrons010306 general physics0210 nano-technologyAnisotropyPhysical Review B
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