English

Scaling in Magnetic Neutron Scattering

Mesoscale and Nanoscale Physics 2025-04-03 v1 Materials Science

Abstract

We report the discovery of scaling in the mesoscale magnetic microstructure of bulk ferromagnets. Supported by analytical micromagnetic theory, we introduce the field-dependent scaling length lC(H)l_{\mathrm{C}}(H), which describes the characteristic long-wavelength magnetization fluctuations that are caused by microstructural defects by means of magnetoelastic and magnetocrystalline anisotropy. The scaling length lCl_{\mathrm{C}} is identified to consist of the micromagnetic exchange length of the field lHl_{\mathrm{H}}, which depends on the magnetic interactions, and a field-independent contribution that reflects the properties of the magnetic anisotropy field and the magnetostatic fluctuations. The latter finding is rooted in the convolution relationship between the grain microstructure and micromagnetic response functions. We validated the scaling property by analyzing experimental data for the magnetic neutron scattering cross section. When plotted as a function of the dimensionless scaled scattering vector q(H)=qlC(H)\mathfrak{q}(H) = q \, l_{\mathrm{C}}(H), the field-dependent amplitude-scaled neutron data of nanocrystalline Co and a Nd-Fe-B-based nanocomposite collapse onto a single master curve, demonstrating universal behavior. The scaling length lCl_{\mathrm{C}} provides a framework for analyzing the field-dependent neutron scattering cross section, highlighting the existence of critical length scales that govern the mesoscale microstructure of magnetic materials.

Keywords

Cite

@article{arxiv.2504.01658,
  title  = {Scaling in Magnetic Neutron Scattering},
  author = {Venus Rai and Andreas Michels},
  journal= {arXiv preprint arXiv:2504.01658},
  year   = {2025}
}
R2 v1 2026-06-28T22:43:47.692Z