English

Numerical simulations of scattering speckle from phase ordering systems

Condensed Matter 2015-06-25 v2

Abstract

The scattering of coherent X-rays from dynamically evolving systems is currently becoming experimentally feasible. The scattered beam produces a pattern of bright and dark speckles, which fluctuate almost independently in time and can be used to study the dynamics of the system. Here we report large-scale computer simulations of the speckle dynamics for a phase ordering system, using a two-dimensional model quenched through an order--disorder transition into the two-phase regime. The intensity at each wave vector k{\bf k} is found to be an exponentially distributed random variable. The scaling hypothesis is extended to the two-time correlation function of the scattering intensity at a given wave vector, Corr(k;t1,t2)Corr({\bf k};t_1,t_2). The characteristic decay time difference for the correlation function, t1t2c|t_1 - t_2|_c, is found to scale as kt1+t21/2k|t_1 + t_2|^{1/2}.

Keywords

Cite

@article{arxiv.cond-mat/9606151,
  title  = {Numerical simulations of scattering speckle from phase ordering systems},
  author = {Gregory Brown and Per Arne Rikvold and Martin Grant},
  journal= {arXiv preprint arXiv:cond-mat/9606151},
  year   = {2015}
}

Comments

11 Pages, RevTex, 6 PostScript Figures Accepted to Physica A

R2 v1 2026-07-22T11:53:33.423Z