Spinmotive force due to motion of magnetic bubble arrays driven by magnetic field gradient
arXiv:1406.6964 · doi:10.1038/srep06901
Abstract
Interaction between local magnetization and conduction electrons is responsible for a variety of phenomena in magnetic materials. It has been recently shown that spin current and associated electric voltage can be induced by magnetization that depends on both time and space. This effect, called spinmotive force, provides for a powerful tool for exploring the dynamics and the nature of magnetic textures, as well as a new source for electromotive force. Here we theoretically demonstrate the generation of electric voltages in magnetic bubble array systems subjected to a magnetic field gradient. It is shown by deriving expressions for the electric voltages that the present system offers a direct measure of phenomenological parameter that describes non-adiabaticity in the current induced magnetization dynamics. This spinmotive force opens a door for new types of spintronic devices that exploit the field-gradient.
accepted in Scientific Reports
References in corpus (5)
- Electron Transport Driven by Nonequilibrium Magnetic Textures
- Spin pumping by a field-driven domain wall
- Prediction of Giant Spin Motive Force due to Rashba Spin-Orbit Coupling
- Spin motive force induced by Rashba interaction in the strong sd coupling regime
- Spinmotive force with static and uniform magnetization induced by a time-varying electric field
Cited by in corpus (6)
- Electric voltage generation by antiferromagnetic dynamics
- Skyrmion-number dependence of spin-transfer torque on magnetic bubbles
- Observation of spin-motive force in ferrimagnetic GdFeCo alloy films
- Skyrmion-generated spinmotive forces in inversion broken ferromagnets
- Spin-motive force due to domain wall motion in the presence of Dzyaloshinskii-Moriya Interaction
- Theory of magnon motive force in chiral ferromagnets