articleTop 1% cited
Spin Hall effects
Reviews of Modern Physics · 2015 · Vol. 87(4) · pp. 1213–1260
Jairo Sinova✉(Johannes Gutenberg University Mainz)Sergio O. Valenzuela(Czech Academy of Sciences, Institute of Physics)J. Wunderlich(Czech Academy of Sciences, Institute of Physics)C. H. Back(Johannes Gutenberg University Mainz)T. Jungwirth(Czech Academy of Sciences, Institute of Physics)
Abstract
In solid-state materials with strong relativistic spin-orbit coupling, charge currents generate transverse spin currents. The associated spin Hall and inverse spin Hall effects distinguish between charge and spin current where electron charge is a conserved quantity but its spin direction is not. This review provides a theoretical and experimental treatment of this subfield of spintronics, beginning with distinct microscopic mechanisms seen in ferromagnets and concluding with a discussion of optical-, transport-, and magnetization-dynamics-based experiments closely linked to the microscopic and phenomenological theories presented.
Magnetic properties of thin filmsQuantum and electron transport phenomenaPhysics of Superconductivity and MagnetismPhysicsSpin Hall effectSpintronicsCondensed matter physicsSpin (aerodynamics)SpinplasmonicsCharge (physics)Quantum spin Hall effectFerromagnetismMagnetization
Funding
- Alexander von Humboldt-Stiftung
- Deutsche Forschungsgemeinschaft
- Grantová Agentura České Republiky
- Ministerio de Economía y Competitividad
- European Research Council
Citations
2,917
FWCI
131.80
field-weighted impact
References
270
Percentile
100%
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