Giant interfacial spin-Hall angle from Rashba-Edelstein effect revealed by the spin-Hall Hanle processes

ORAL

Abstract

The Rashba-Edelstein effect (REE), which generates interfacial spin polarization and subsequent spin current, is a compelling spin-charge conversion mechanism for spintronics applications, since it is not limited by the elemental spin-orbit coupling. In this work, we demonstrate REE at Pt/ferroelectric interfaces using the recently elucidated spin-Hall Hanle effects (SHHE), in which a Larmor precession of spin polarization in a diffusion process from the interface manifest as magnetoresistance and Hall effect. We show that REE leads to a three-fold enhancement of the effective spin Hall angle in ferroelectric interface Pt/h-LuFeO3 compared to that of Pt /Al2O3, although the difference in the spin relaxation time is negligible. Modeling using SHHEs involving REE as an additional source of interfacial polarization suggests that REE can lead to an interfacial spin Hall angle (~0.3) that is one order of magnitude larger than the bulk value of Pt. Our results demonstrate that a ferroelectric interface can produce large spin-charge conversion and that SHHEs are a sensitive tool for characterizing interfacial spin transport properties.

* This research was primarily supported by the U.S. Department of Energy (DOE), Office of Science, Basic Energy Sciences (BES), under Award No. DE-SC0019173. The work at NC State was supported by the U.S. DOE, Office of Science, BES, under Award No. DE-SC0020992. The research was performed in part in the Nebraska Nanoscale Facility: National Nanotechnology Coordinated Infrastructure and the Nebraska Center for Materials and Nanoscience (and/or NERCF), which are supported by the National Science Foundation under Award No. ECCS: 1542182, and the Nebraska Research Initiative.

Publication: Li, J., Comstock, A. H., McConnell, A., Sun, D., & Xu, X. (2023). Giant interfacial spin-Hall angle from Rashba-Edelstein effect revealed by the spin-Hall Hanle processes. arXiv preprint arXiv:2309.10985.

Presenters

  • Andrew H Comstock

    North Carolina State University

Authors

  • Andrew H Comstock

    North Carolina State University

  • Jing Li

    University of Nebraska - Lincoln

  • Aeron McConnell

    North Carolina State University

  • Dali Sun

    North Carolina State University, Physics Department, North Carolina State University

  • Xiaoshan Xu

    University of Nebraska - Lincoln, University of Nebraska Lincoln, University of Nebraska-Lincoln