Spin torque from inhomogeneous current produces periodic magnonic frequency modulation in a bicomponent nanopatterned crystal, resulting in avoided crossings and tunable hybrid modes between localized and propagating Damon-Eshbach waves.
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Generalized ML force fields reproduce non-collinear magnetic orders on lattices and predict voltage-driven domain-wall motion in itinerant magnets using extensions to nonequilibrium torques.
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Spin torque driven mode hybridization and band engineering in nanopatterned magnonic crystals
Spin torque from inhomogeneous current produces periodic magnonic frequency modulation in a bicomponent nanopatterned crystal, resulting in avoided crossings and tunable hybrid modes between localized and propagating Damon-Eshbach waves.
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Machine-learning modeling of magnetization dynamics in quasi-equilibrium and driven metallic spin systems
Generalized ML force fields reproduce non-collinear magnetic orders on lattices and predict voltage-driven domain-wall motion in itinerant magnets using extensions to nonequilibrium torques.