English

Spin-torque induced wall motion in perpendicularly magnetized discs: ballistic versus oscillatory behavior

Materials Science 2021-06-30 v1 Applied Physics

Abstract

We use time-resolved measurement and modeling to study the spin-torque induced motion of a domain wall in perpendicular anisotropy magnets. In disc of diameters between 70 and 100 nm, the wall drifts across the disc with pronounced back-and-forth oscillations that arise because the wall moves in the Walker regime. Several switching paths occur stochastically and lead to distinct switching durations. The wall can cross the disc center either in a ballistic manner or with variably marked oscillations before and after the crossing. The crossing of the center can even occur multiple times if a vertical Bloch line nucleates within the wall. The wall motion is analyzed using a collective coordinate model parametrized by the wall position qq and the tilt ϕ\phi of its in-plane magnetization projection. The dynamics results from the stretch field, which describes the affinity of the wall to reduce its length and the wall stiffness field describing the wall tendency to reduce dipolar energy by rotating its tilt. The wall oscillations result from the continuous exchange of energy between to the two degrees of freedom qq and ϕ\phi. The stochasticity of the wall dynamics can be understood from the concept of the retention pond: a region in the qϕq-\phi space in which walls are transiently bound to the disc center. Walls having trajectories close to the pond must circumvent it and therefore have longer propagation times. The retention pond disappears for a disc diameter of typically 40 nm: the wall then moves in a ballistic manner irrespective of the dynamics of its tilt. The propagation time is then robust against fluctuations hence reproducible.

Keywords

Cite

@article{arxiv.2104.10929,
  title  = {Spin-torque induced wall motion in perpendicularly magnetized discs: ballistic versus oscillatory behavior},
  author = {Paul Bouquin and Joo-Von Kim and Olivier Bultynck and Siddharth Rao and Sebastien Couet and Gouri Sankar Kar and Thibaut Devolder},
  journal= {arXiv preprint arXiv:2104.10929},
  year   = {2021}
}

Comments

submitted to Phys. Rev. B

R2 v1 2026-06-24T01:25:26.332Z