Synopsis

Stabilizing Magnetic Defects

• Physics 19, s85
Researchers have shown that defects in lattices of magnetic quasiparticles called skyrmions can be created, stabilized, and manipulated.
T. Denneulin et al. [1]

A hexagonal lattice is the most space-efficient way to pack circular disks on a flat surface. The same rule applies to 2D lattices of magnetic skyrmions, which are whirlpool-like twists in a material’s magnetic texture. Like other lattices, skyrmion lattices can exhibit defects where one skyrmion has a surfeit or a deficit of neighbors. Now Thibaud Denneulin at Jülich Research Centre in Germany and colleagues have created and stabilized such defects, whose elusiveness has, until now, made them hard to study [1].

If a defect is introduced into a hexagonal lattice so that a given node has only five neighbors, the discrepancy is usually balanced by the creation of a seven-neighbor defect nearby. Isolating just one of these defects in a skyrmion lattice is difficult because elastic stresses cause it to reconfigure, expelling the defect to the boundary.

Denneulin and colleagues stabilized a five-neighbor defect by strictly controlling the skyrmion population and the potential-energy landscape. They etched a submicrometer, pentagonal corral in a film of iron germanide. This material usually has a striped magnetic texture, but by strengthening and weakening a magnetic field over several cycles, they caused the magnetic stripes to pinch off into skyrmions. Populating the pentagon with precisely 16 skyrmions yielded a central skyrmion with five neighbors, surrounded by two rings of hexagonally arranged skyrmions. The adjacent hexagonal lattice and the pentagonal boundary made the movement of the single defect energetically unfavorable.

The researchers then increased the skyrmion population to 17, allowing for the creation of an additional seven-neighbor defect alongside the central five-neighbor defect. The location of this additional defect dithered among the pentagon’s corners. By tilting the material relative to the magnetic field, Denneulin and colleagues could make the defect settle on a single corner. They say that this control could make such pentagonal skyrmion systems useful as base-five information-processing elements.

–Marric Stephens

Marric Stephens is a Corresponding Editor for Physics Magazine based in Bristol, UK.

References

  1. T. Denneulin et al., “Magnetic skyrmion lattice disclinations in pentagon- and heptagon-shaped FeGe nanostructures,” Phys. Rev. B 114, 024411 (2026).

Subject Areas

MagnetismCondensed Matter Physics

Related Articles

The Giant Permittivity of Nanoconfined Water
Nanophysics

The Giant Permittivity of Nanoconfined Water

Researchers have proposed that long-range molecular dipole correlations alter water’s electrical properties when it’s confined in a gap a few nanometers wide. Read More »

The Unexpected Ubiquity of the Phonon Thermal Hall Effect
Condensed Matter Physics

The Unexpected Ubiquity of the Phonon Thermal Hall Effect

The discovery of a thermal version of the Hall effect in common semiconductors challenges our understanding of how magnetic fields and heat fluxes interact within solids. Read More »

Quasicrystalline Water Waves
Fluid Dynamics

Quasicrystalline Water Waves

A pattern of surface waves bestowed with fivefold symmetry hosts topological structures. Read More »

More Articles