High-topological-number skyrmions and phase transition in two-dimensional frustrated - magnets
arXiv:2401.05719
Abstract
With the rapidly expanded field of two-dimensional(2D) magnetic materials, the frustrated magnetic skyrmions are attracting growing interest recently. Here, based on hexagonal close-packed (HCP) lattice of - Heisenberg spins model, we systematically investigate the frustrated skyrmions and phase transition by micromagnetic simulations and first-principles calculations. The results show that four spin phases of antiferromagnetic, labyrinth domain, skyrmion and ferromagnetic textures are determined by the identified ranges of -. Importantly, skyrmion phase with an increasing topological number () covers a wider - area. Then, the diameter of skyrmions can be tuned by the frustration strength () or external magnetic field. Besides, a phase transition from Nel to Bloch type skyrmion is observed due to the change of the helicity with the variation of . Furthermore, as increasing magnetic field, the skyrmions with high () tend to split into the ones with , thereby achieving a lower systematic energy. Additionally, we find that the CoCl monolayer satisfies the requirement of the frustrated - magnet, and the related magnetic behaviors agree with the above conclusions. The frustration-induced skyrmions are stable without the manipulation of temperature and magnetic field. Our results may open a possible way toward spintronic applications based on High-topological-number and nanoscale topological spin textures of skyrmions.
7 pages, 5 figures