English

Universality between current- and field-driven domain wall dynamics in ferromagnetic nanowires

Materials Science 2010-06-09 v2 Mesoscale and Nanoscale Physics

Abstract

Spin-polarized electric current exerts torque on local magnetic spins, resulting in magnetic domain-wall (DW) motion in ferromagnetic nanowires. Such current-driven DW motion opens great opportunities toward next-generation magnetic devices controlled by current instead of magnetic field. However, the nature of the current-driven DW motion--considered qualitatively different from magnetic-field-driven DW motion--remains yet unclear mainly due to the painfully high operation current densities J_OP, which introduce uncontrollable experimental artefacts with serious Joule heating. It is also crucial to reduce J_OP for practical device operation. By use of metallic Pt/Co/Pt nanowires with perpendicular magnetic anisotropy, here we demonstrate DW motion at current densities down to the range of 10^9 A/m^2--two orders smaller than existing reports. Surprisingly the current-driven motion exhibits a scaling behaviour identical to the field-driven motion and thus, belongs to the same universality class despite their qualitative differences. Moreover all DW motions driven by either current or field (or by both) collapse onto a single curve, signalling the unification of the two driving mechanisms. The unified law manifests non-vanishing current efficiency at low current densities down to the practical level, applicable to emerging magnetic nanodevices.

Keywords

Cite

@article{arxiv.0912.5127,
  title  = {Universality between current- and field-driven domain wall dynamics in ferromagnetic nanowires},
  author = {Jae-Chul Lee and Kab-Jin Kim and Jisu Ryu and Kyoung-Woong Moon and Sang-Jun Yun and Gi-Hong Gim and Kang-Soo Lee and Kyung-Ho Shin and Hyun-Woo Lee and Sug-Bong Choe},
  journal= {arXiv preprint arXiv:0912.5127},
  year   = {2010}
}

Comments

This paper has been withdrawn by the authors. New version is available at http://arxiv.org/abs/1006.1216