Quantum fluctuations stabilize skyrmion textures
Abstract
We study the quantum spin waves associated to skyrmion textures. We show that the zero-point energy associated to the quantum spin fluctuations of a noncollinear spin texture produce Casimir-like magnetic fields. We study the effect of these Casimir fields on the topologically protected noncollinear spin textures known as skyrmions. In a Heisenberg model with Dzyalonshinkii-Moriya interactions, chosen so the classical ground state displays skyrmion textures, we calculate the spin-wave spectrum, using the Holstein-Primakoff approximation, and the associated zero-point energy, to the lowest order in the spin-wave expansion. Our calculations are done both for the single-skyrmion case, for which we obtain a discrete set of skyrmion bound states, as well as for the skyrmion crystal, for which the resulting spectrum gives the spin-wave bands. In both cases, our calculations show that the Casimir magnetic field contributes up to 10% of the total Zeeman energy necessary to delete the skyrmion texture with an applied field.
General note
Artículo de publicación ISI
Patrocinador
Fondecyt
1150072
Fondo de Innovacion para la Competitividad-MINECON
ICM P10-061-F
Anillo
ACT 1117
Financiamiento Basal para Centros Cientificos y Tecnologicos de Excelencia (Chile)
FB 0807
Identifier
URI: https://repositorio.uchile.cl/handle/2250/136885
DOI: DOI: 10.1103/PhysRevB.92.245436
Quote Item
Physical Review B Volumen: 92 Número: 24 Número de artículo: 245436 (2015)
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