Revealing the importance of interfaces for pure spin current transport
arXiv:1911.07222 · doi:10.1103/PhysRevResearch.3.023110
Abstract
Spin transport phenomena underpin an extensive range of spintronic effects. In particular spin transport across interfaces occurs in most device concepts, but is so far poorly understood. As interface properties strongly impact spin transport, one needs to characterize and correlate them to the fabrication method. Here we investigate pure spin current transport across interfaces and connect this with imaging of the interfaces. We study the detection of pure spin currents via the inverse spin Hall effect in Pt and the related spin current absorption by Pt in Py-Cu-Pt lateral spin valves. Depending on the fabrication process, we either find a large (inverse) spin Hall effect signal and low spin absorption by Pt or vice versa. We explain these counter-intuitive results by the fabrication induced varying quality of the Cu/Pt interfaces, which is directly revealed via a special scanning electron microscopy technique for interface imaging and correlated to the spin transport.
23 pages, 4 figures
References in corpus (9)
- Spin Transfer Torques
- Non-collinear Magnetoelectronics
- Determination of intrinsic spin Hall angle in Pt
- Onsager Relations in Coupled Electric, Thermoelectric and Spin Transport: The Ten-Fold Way
- Spin-memory loss due to spin-orbit coupling at ferromagnet/heavy-metal interfaces: Ab initio spin-density matrix approach
- Large enhancement of the spin Hall effect in Au by scattering with side-jump on Ta impurities
- Contribution of defects to the spin relaxation in copper nanowires
- Enhancement of spin transparency by interfacial alloying
- Theory of Kondo suppression of spin polarization in nonlocal spin valves