English

Superferromagnetism and domain-wall topologies in artificial 'pinwheel' spin ice

Disordered Systems and Neural Networks 2019-02-11 v1 Mesoscale and Nanoscale Physics

Abstract

For over ten years, arrays of interacting single-domain nanomagnets, referred to as artificial spin ices, have been engineered with the aim to study frustration in model spin systems. Here, we use Fresnel imaging to study the reversal process in 'pinwheel' artificial spin ice, a modified square ASI structure obtained by rotating each island by some angle about its midpoint. Our results demonstrate that a simple 45{\deg} rotation changes the magnetic ordering from antiferromagnetic to ferromagnetic, creating a superferromagnet which exhibits mesoscopic domain growth mediated by domain wall nucleation and coherent domain propagation. We observe several domain-wall configurations, most of which are direct analogues to those seen in continuous ferromagnetic films. However, novel charged walls also appear due to the geometric constraints of the system. Changing the orientation of the external magnetic field allows control of the nature of the spin reversal with the emergence of either 1-D or 2-D avalanches. This unique property of pinwheel ASI could be employed to tune devices based on magnetotransport phenomena such as Hall circuits.

Keywords

Cite

@article{arxiv.1808.10490,
  title  = {Superferromagnetism and domain-wall topologies in artificial 'pinwheel' spin ice},
  author = {Yue Li and Gary W. Paterson and Gavin M. Macauley and Fabio S. Nascimento and Ciaran Ferguson and Sophie A. Morley and Mark C. Rosamond and Donald A. MacLaren and Rair Macêdo and Christopher H. Marrows and Stephen McVitie and Robert L. Stamps},
  journal= {arXiv preprint arXiv:1808.10490},
  year   = {2019}
}