English

Skyrmion Hall Effect Revealed by Direct Time-Resolved X-Ray Microscopy

Materials Science 2017-03-08 v2

Abstract

Magnetic skyrmions are highly promising candidates for future spintronic applications such as skyrmion racetrack memories and logic devices. They exhibit exotic and complex dynamics governed by topology and are less influenced by defects, such as edge roughness, than conventionally used domain walls. In particular, their finite topological charge leads to a predicted "skyrmion Hall effect", in which current-driven skyrmions acquire a transverse velocity component analogous to charged particles in the conventional Hall effect. Here, we present nanoscale pump-probe imaging that for the first time reveals the real-time dynamics of skyrmions driven by current-induced spin orbit torque (SOT). We find that skyrmions move at a well-defined angle {\Theta}_{SH} that can exceed 30{\deg} with respect to the current flow, but in contrast to theoretical expectations, {\Theta}_{SH} increases linearly with velocity up to at least 100 m/s. We explain our observation based on internal mode excitations in combination with a field-like SOT, showing that one must go beyond the usual rigid skyrmion description to unravel the dynamics.

Keywords

Cite

@article{arxiv.1608.07216,
  title  = {Skyrmion Hall Effect Revealed by Direct Time-Resolved X-Ray Microscopy},
  author = {Kai Litzius and Ivan Lemesh and Benjamin Krüger and Pedram Bassirian and Lucas Caretta and Kornel Richter and Felix Büttner and Koji Sato and Oleg A. Tretiakov and Johannes Förster and Robert M. Reeve and Markus Weigand and Iuliia Bykova and Hermann Stoll and Gisela Schütz and Geoffrey S. D. Beach and Mathias Kläui},
  journal= {arXiv preprint arXiv:1608.07216},
  year   = {2017}
}

Comments

pdf document arxiv_v1.1. 24 pages (incl. 9 figures and supplementary information)

R2 v1 2026-06-22T15:31:01.553Z