English

Scaling behavior of the dipole coupling energy in two-dimensional disordered magnetic nanostructures

Disordered Systems and Neural Networks 2009-11-10 v1 Soft Condensed Matter

Abstract

Numerical calculations of the average dipole-coupling energy Eˉdip\bar E_\mathrm{dip} in two-dimensional disordered magnetic nanostructures are performed as function of the particle coverage CC. We observe that Eˉdip\bar E_\mathrm{dip} scales as EˉdipCα\bar E_\mathrm{dip}\propto C^{\alpha^*} with an unusually small exponent α0.8\alpha^*\simeq 0.8--1.0 for coverages C20C\lesssim20%. This behavior is shown to be primarly given by the contributions of particle pairs at short distances, which is intrinsically related to the presence of an appreciable degree of disorder. The value of α\alpha^* is found to be sensitive to the magnetic arrangement within the nanostructure and to the degree of disorder. For large coverages C20C\gtrsim20% we obtain EˉdipCα\bar E_\mathrm{dip}\propto C^\alpha with α=3/2\alpha=3/2, in agreement with the straighforward scaling of the dipole coupling as in a periodic particle setup. Taking into account the effect of single-particle anisotropies, we show that the scaling exponent can be used as a criterion to distinguish between weakly interacting (α1.0\alpha^* \simeq 1.0) and strongly interacting (α0.8\alpha^* \simeq 0.8) particle ensembles as function of coverage.

Keywords

Cite

@article{arxiv.cond-mat/0310299,
  title  = {Scaling behavior of the dipole coupling energy in two-dimensional disordered magnetic nanostructures},
  author = {P. J. Jensen and G. M. Pastor},
  journal= {arXiv preprint arXiv:cond-mat/0310299},
  year   = {2009}
}

Comments

accepted for publication in Phys.Rev.B