Spin-dependent transport at heavy metal/magnetic insulator interfaces is at the origin of many phenomena at the forefront of spintronics research. A proper quantification of the different interfacial spin conductances is crucial for many applications. Here, we report the first measurement of the spin Hall magnetoresistance (SMR) of Pt on a purely ferromagnetic insulator (EuS). We perform SMR measurements in a wide range of temperatures and fit the results by using a microscopic model. From this fitting procedure we obtain the temperature dependence of the spin conductances (Gs, Gr and Gi), disentangling the contribution of field-like torque (Gi), damping-like torque (Gr), and spin-flip scattering (Gs). An interfacial exchange field of the order of 1 meV acting upon the conduction electrons of Pt can be estimated from Gi, which is at least three times larger than Gr below the Curie temperature. Our work provides an easy method to quantify this interfacial spin-splitting field, which play a key role in emerging fields such as superconducting spintronics and caloritronics, and topological quantum computation.
@article{arxiv.2004.12009,
title = {Strong interfacial exchange field in a heavy metal/ferromagnetic insulator system determined by spin Hall magnetoresistance},
author = {Juan M. Gomez-Perez and Xian-Peng Zhang and Francesco Calavalle and Maxim Ilyn and Carmen González-Orellana and Marco Gobbi and Celia Rogero and Andrey Chuvilin and Vitaly N. Golovach and Luis E. Hueso and F. Sebastian Bergeret and Fèlix Casanova},
journal= {arXiv preprint arXiv:2004.12009},
year = {2020}
}
Comments
15 pages, 3 figures, Supporting information included at the end