Artículo
Anisotropy-driven response of the fractional antiferromagnetic skyrmion lattice in MnSc2 S4 to applied magnetic fields
Rosales, Héctor Diego
; Gómez Albarracín, Flavia Alejandra
; Guratinder, K.; Tsurkan, V.; Prodan, L.; Ressouche, E.; Zaharko, O.
Fecha de publicación:
05/2022
Editorial:
American Physical Society
Revista:
Physical Review B: Condensed Matter and Materials Physics
ISSN:
1098-0121
e-ISSN:
2469-9969
Idioma:
Inglés
Tipo de recurso:
Artículo publicado
Clasificación temática:
Resumen
We theoretically and experimentally study the stability of the unconventional fractional antiferromagnetic skyrmion lattice (AF-SkL) in MnSc2S4 spinel under magnetic fields applied along the [1-10] crystal direction. By performing numerical Monte Carlo simulations for the minimal effective spin model that we proposed in S. Gao, Nature 586, 37 (2020)0028-083610.1038/s41586-020-2716-8, we show that the lattice is aligned within the equivalent and symmetric [1-11] or [1-1-1] planes, which are equally inclined to the applied magnetic-field H. We attribute this behavior to the magnetic anisotropy of the host material. Neutron single-crystal diffraction presents a very good agreement with the predictions of the effective model. It reveals that the topological spin texture gets destabilized at low temperatures and moderate magnetic fields and is replaced by a conical phase for H// [1-10]. The present study elucidates the central role of the magnetic anisotropy in the stabilization of AF-Sk states.
Palabras clave:
SKYRMIONS
,
MnSc2S4
,
FRUSTRATION
,
MONTE CARLO
Archivos asociados
Licencia
Identificadores
Colecciones
Articulos(IFLYSIB)
Articulos de INST.FISICA DE LIQUIDOS Y SIST.BIOLOGICOS (I)
Articulos de INST.FISICA DE LIQUIDOS Y SIST.BIOLOGICOS (I)
Citación
Rosales, Héctor Diego; Gómez Albarracín, Flavia Alejandra; Guratinder, K.; Tsurkan, V.; Prodan, L.; et al.; Anisotropy-driven response of the fractional antiferromagnetic skyrmion lattice in MnSc2 S4 to applied magnetic fields; American Physical Society; Physical Review B: Condensed Matter and Materials Physics; 105; 22; 5-2022; 1-7
Compartir
Altmétricas