4.6 Article

Formation of Neel-type skyrmions in an antidot lattice with perpendicular magnetic anisotropy

Journal

PHYSICAL REVIEW B
Volume 100, Issue 14, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.100.144435

Keywords

-

Funding

  1. ETH Zurich Post-Doctoral fellowship
  2. Marie Curie actions for People COFUND program [FEL-11 16-1]
  3. EU FP7 SASPRO Programme (REA) [609427, WEST 1244/02/01]
  4. Slovak Academy of Sciences
  5. European Community [290605]
  6. EU Horizon 2020 project MagIC [644348]
  7. Polish Ministry of Science and Higher Education [W28/H2020/2017]
  8. National Science Centre of Poland [2017/27/N/ST3/00419]
  9. Adam Mickiewicz University Foundation
  10. Poznan Supercomputing and Networking Center [398]
  11. EU Horizon 2020 project MagicSky [665095]
  12. German Ministerium fur Bildung und Forschung (BMBF) [05KS4WE1/6, 05KS7WE1]
  13. European Metrology Programme for Innovation and Research (EMPIR) [17FUN08 TOPS]

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Magnetic skyrmions are particlelike chiral spin textures found in magnetic films with out-of-plane anisotropy and are considered to be potential candidates as information carriers in next generation data storage devices. Despite intense research into the nature of skyrmions and their dynamic properties, there are several key challenges that still need to be addressed. In particular, the outstanding issues are the reproducible generation, stabilization, and confinement of skyrmions at room temperature. Here, we present a method for the capture of magnetic skyrmions in an array of defects in the form of an antidot lattice. We find that inhomogeneity in the total effective field produced by the antidot lattice is important for the formation of skyrmions which are mainly stabilized by the dipolar interaction. With micromagnetic simulations and scanning transmission x-ray microscopy we elucidate that the formation of skyrmions within the antidot lattice depends on the lattice constant and that, below a certain lattice constant, the skyrmion formation is suppressed. Based on our results we propose that, by varying the lattice constant, we can modify the probability of skyrmion formation in different parts of a sample by specific patterning. This provides another platform for experimental investigations of skyrmions and skyrmion-based devices.

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