English

Spin wave emission by spin-orbit torque antennas

Mesoscale and Nanoscale Physics 2018-10-31 v2

Abstract

We study the generation of propagating spin waves in Ta/CoFeB waveguides by spin-orbit torque antennas and compare them to conventional inductive antennas. The spin-orbit torque was generated by a transverse microwave current across the magnetic waveguide. The detected spin wave signals for an in-plane magnetization across the waveguide (Damon-Eshbach configuration) exhibited the expected phase rotation and amplitude decay upon propagation when the current spreading was taken into account. Wavevectors up to about 6 rad/μ\mum could be excited by the spin-orbit torque antennas despite the current spreading, presumably due to the non-uniformity of the microwave current. The relative magnitude of generated anti-damping spin-Hall and Oersted fields was calculated within an analytic model and it was found that they contribute approximately equally to the total effective field generated by the spin-orbit torque antenna. Due to the ellipticity of the precession in the ultrathin waveguide and the different orientation of the anti-damping spin-Hall and Oersted fields, the torque was however still dominated by the Oersted field. The prospects for obtaining a pure spin-orbit torque response are discussed, as are the energy efficiency and the scaling properties of spin-orbit torque antennas.

Keywords

Cite

@article{arxiv.1802.00861,
  title  = {Spin wave emission by spin-orbit torque antennas},
  author = {Giacomo Talmelli and Florin Ciubotaru and Kevin Garello and Xiao Sun and Marc Heyns and Iuliana P. Radu and Christoph Adelmann and Thibaut Devolder},
  journal= {arXiv preprint arXiv:1802.00861},
  year   = {2018}
}

Comments

20 pages, 5 figures

R2 v1 2026-06-23T00:09:19.293Z