Non-stochastic switching and emergence of magnetic vortices in artificial quasicrystal spin ice

Previous studies of artificial spin ice have been largely restricted to periodic dot lattices. Ferromagnetic switching of segments in an applied magnetic field is stochastic in periodic spin ice systems, which makes emergent phenomena, such as the formation of vortex loops, hard to control or predic...

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Veröffentlicht in:Physica. C, Superconductivity Superconductivity, 2014-08, Vol.503, p.170-174
Hauptverfasser: BHAT, V. S, FARMER, B, SMITH, N, TEIPEL, E, WOODS, J, SKLENAR, J, KETTERSON, J. B, HASTINGS, J. T, DE LONG, L. E
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Sprache:eng
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Zusammenfassung:Previous studies of artificial spin ice have been largely restricted to periodic dot lattices. Ferromagnetic switching of segments in an applied magnetic field is stochastic in periodic spin ice systems, which makes emergent phenomena, such as the formation of vortex loops, hard to control or predict. We fabricated finite, aperiodic Penrose P2 tilings as antidot lattices with fivefold rotational symmetry in permalloy thin films. Measurements of the field dependence of the static magnetization reveal reproducible knee anomalies whose number and form are temperature dependent, which suggests they mark cooperative rearrangements of the tiling magnetic texture. Our micromagnetic simulations of the P2 tiling are in good agreement with experimental magnetization data and exhibit non-stochastic magnetic switching of segments in applied field, and vortex loops that are stable over an extended field interval during magnetic reversal.
ISSN:0921-4534
1873-2143
DOI:10.1016/j.physc.2014.04.043