English

Diameter-independent skyrmion Hall angle in the plastic flow regime observed in chiral magnetic multilayers

Mesoscale and Nanoscale Physics 2020-02-19 v1

Abstract

Magnetic skyrmions are topologically non-trivial nanoscale objects. Their topology, which originates in their chiral domain wall winding, governs their unique response to a motion-inducing force. When subjected to an electrical current, the chiral winding of the spin texture leads to a deflection of the skyrmion trajectory, characterized by an angle with respect to the applied force direction. This skyrmion Hall angle was believed to be skyrmion diameter-dependent. In contrast, our experimental study finds that within the plastic flow regime the skyrmion Hall angle is diameter-independent. At an average velocity of 6 ±\pm 1 m/s the average skyrmion Hall angle was measured to be 9{\deg} ±\pm 2{\deg}. In fact, in the plastic flow regime, the skyrmion dynamics is dominated by the local energy landscape such as materials defects and the local magnetic configuration.

Keywords

Cite

@article{arxiv.1908.04239,
  title  = {Diameter-independent skyrmion Hall angle in the plastic flow regime observed in chiral magnetic multilayers},
  author = {Katharina Zeissler and Simone Finizio and Craig Barton and Alexandra Huxtable and Jamie Massey and Jörg Raabe and Alexandr V. Sadovnikov and Sergey A. Nikitov and Richard Brearton and Thorsten Hesjedal and Gerrit van der Laan and Mark C. Rosamond and Edmund H. Linfield and Gavin Burnell and Christopher H. Marrows},
  journal= {arXiv preprint arXiv:1908.04239},
  year   = {2020}
}