Skyrmions in 2D chiral magnets with noncollinear ground states stabilized by higher-order interactions

Fuente: arXiv
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Hauptverfasser: Benny, Mathews, Ghosh, Moinak, Goerzen, Moritz A., Beyer, Bjarne, Schrautzer, Hendrik, Heinze, Stefan, Paul, Souvik
Format: Preprint
Veröffentlicht: 2026
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author Benny, Mathews
Ghosh, Moinak
Goerzen, Moritz A.
Beyer, Bjarne
Schrautzer, Hendrik
Heinze, Stefan
Paul, Souvik
author_facet Benny, Mathews
Ghosh, Moinak
Goerzen, Moritz A.
Beyer, Bjarne
Schrautzer, Hendrik
Heinze, Stefan
Paul, Souvik
contents Magnetic skyrmions are intriguing topological spin textures that have attracted great attention due to their potential for future spintronic devices. Skyrmions have so far been explored in different magnetic materials, such as ferromagnets, antiferromagnets, and ferrimagnets. Here, we propose a new type of unconventional skyrmions stabilized in noncollinear magnets. Using first-principles calculations and atomistic spin simulations, we demonstrate that a noncollinear ground state can be stabilized in Rh/Co and Pd/Co atomic bilayers on the Re(0001) surface by four spin exchange interactions, although Co -- a material often used in applications -- is a prototypical ferromagnet with strong pairwise exchange interaction. We further show that unconventional skyrmion lattices and isolated skyrmions can emerge on this noncollinear magnetic background. Transition-state theory calculations reveal that these metastable skyrmions are protected by large energy barriers, suggesting that they could be observed in experiments. These unconventional types of skyrmions in noncollinear magnets might open new possibilities for topological spin transport or magnet-superconductor hybrid systems.
format Preprint
id arxiv_https___arxiv_org_abs_2602_03487
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Skyrmions in 2D chiral magnets with noncollinear ground states stabilized by higher-order interactions
Benny, Mathews
Ghosh, Moinak
Goerzen, Moritz A.
Beyer, Bjarne
Schrautzer, Hendrik
Heinze, Stefan
Paul, Souvik
Materials Science
Magnetic skyrmions are intriguing topological spin textures that have attracted great attention due to their potential for future spintronic devices. Skyrmions have so far been explored in different magnetic materials, such as ferromagnets, antiferromagnets, and ferrimagnets. Here, we propose a new type of unconventional skyrmions stabilized in noncollinear magnets. Using first-principles calculations and atomistic spin simulations, we demonstrate that a noncollinear ground state can be stabilized in Rh/Co and Pd/Co atomic bilayers on the Re(0001) surface by four spin exchange interactions, although Co -- a material often used in applications -- is a prototypical ferromagnet with strong pairwise exchange interaction. We further show that unconventional skyrmion lattices and isolated skyrmions can emerge on this noncollinear magnetic background. Transition-state theory calculations reveal that these metastable skyrmions are protected by large energy barriers, suggesting that they could be observed in experiments. These unconventional types of skyrmions in noncollinear magnets might open new possibilities for topological spin transport or magnet-superconductor hybrid systems.
title Skyrmions in 2D chiral magnets with noncollinear ground states stabilized by higher-order interactions
topic Materials Science
url https://arxiv.org/abs/2602.03487