English

Anisotropic Avalanches and Critical Depinning of Three-Dimensional Magnetic Domain Walls

Soft Condensed Matter 2019-10-18 v2 Disordered Systems and Neural Networks

Abstract

Simulations with more than 101210^{12} spins are used to study the motion of a domain wall driven through a three-dimensional random-field Ising magnet (RFIM) by an external field HH. The interface advances in a series of avalanches whose size diverges at a critical external field HcH_c. Finite-size scaling is applied to determine critical exponents and test scaling relations. Growth is intrinsically anisotropic with the height of an avalanche normal to the interface \ell_\perp scaling as the width along the interface \ell_\| to a power χ=0.85±0.01\chi=0.85 \pm 0.01. The total interface roughness is consistent with self-affine scaling with a roughness exponent ζχ\zeta \approx \chi that is much larger than values found previously for the RFIM and related models that explicitly break orientational symmetry by requiring the interface to be single-valued. Because the RFIM maintains orientational symmetry, the interface develops overhangs that may surround unfavorable regions to create uninvaded bubbles. Overhangs complicate measures of the roughness exponent but decrease in importance with increasing system size.

Keywords

Cite

@article{arxiv.1909.13114,
  title  = {Anisotropic Avalanches and Critical Depinning of Three-Dimensional Magnetic Domain Walls},
  author = {Joel T. Clemmer and Mark O. Robbins},
  journal= {arXiv preprint arXiv:1909.13114},
  year   = {2019}
}

Comments

Corrected typos