Stable skyrmion bundles at room temperature and zero magnetic field in a chiral magnet
arXiv:2512.10243 · doi:10.1038/s41467-024-47730-6
Abstract
Topological spin textures are characterized by topological magnetic charges, Q, which govern their electromagnetic properties. Recent studies have achieved skyrmion bundles with arbitrary integer values of Q, opening possibilities for exploring topological spintronics based on Q. However, the realization of stable skyrmion bundles in chiral magnets at room temperature and zero magnetic field - the prerequisite for realistic device applications - has remained elusive. Here, through the combination of pulsed currents and reversed magnetic fields, we experimentally achieve skyrmion bundles with different integer Q values - reaching a maximum of 24 at above room temperature and zero magnetic field - in the chiral magnet Co8Zn10Mn2. We demonstrate the field-driven annihilation of high-Q bundles and present a phase diagram as a function of temperature and field. Our experimental findings are consistently corroborated by micromagnetic simulations, which reveal the nature of the skyrmion bundle as that of skyrmion tubes encircled by a fractional Hopfion.
Published in Nature Communications
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- Skyrmion Sliding Switch in a 90-nm-Wide Nanostructured Chiral Magnet
- Deterministic Electrical Control of Single Magnetic Bubbles in Nanostructured Cells
- Enhanced Curie temperature and room-temperature 50-nm skyrmions achieved in hexagonal ferromagnet Mn5Ge3+x synthesized via a high-pressure method
- Fresnel Magnetic Imaging of Ultrasmall Skyrmion Lattices