Y3Fe5O12 Spin Pumping for Quantitative Understanding of Pure Spin Transport and Spin Hall Effect in a Broad Range of Materials
arXiv:1410.1597 · doi:10.1063/1.4913813
Abstract
Using Y3Fe5O12 (YIG) thin films grown by our sputtering technique, we study dynamic spin transport in nonmagnetic (NM), ferromagnetic (FM) and antiferromagnetic (AF) materials by ferromagnetic resonance (FMR) spin pumping. From both inverse spin Hall effect (ISHE) and damping enhancement, we determine the spin mixing conductance and spin Hall angle in many metals. Surprisingly, we observe robust spin conduction in AF insulators excited by an adjacent YIG at resonance. This demonstrates that YIG spin pumping is a powerful and versatile tool for understanding spin Hall physics, spin-orbit coupling (SOC), and magnetization dynamics in a broad range of materials.
24 pages, 8 figures, 1 table
References in corpus (4)
- Study of Intrinsic Spin Hall Effect and Orbital Hall Effect in 4d- and 5d- Transition Metals
- Scaling behavior of the spin pumping effect in ferromagnet/platinum bilayers
- Enhancement of Pure Spin Currents in Spin Pumping Y3Fe5O12/Cu/metal Trilayers through Spin Conductance Matching
- Experimental and Numerical Understanding of Localized Spin Wave Mode Behavior in Broadly Tunable Spatially Complex Magnetic Configurations
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- Spin transport and dynamics in all-oxide perovskite LaSrMnO/SrRuO bilayers probed by ferromagnetic resonance
- Exploring orbital-charge conversion mediated by interfaces with copper through spin-orbital pumping
- Theory of the low-temperature longitudinal spin Seebeck effect
- Probing orbital currents through inverse orbital Hall and Rashba effects
- Self-induced spin pumping and inverse spin Hall effect in single FePt thin films
- Anisotropy-Driven Anomalous Inverse Orbital Hall Effect in Fe Films