English

Impact of defects on percolation in random sequential adsorption of linear k-mers on square lattice

Statistical Mechanics 2015-01-16 v1 Disordered Systems and Neural Networks

Abstract

The effect of defects on the percolation of linear kk-mers (particles occupying kk adjacent sites) on a square lattice is studied by means of Monte Carlo simulation. The kk-mers are deposited using a random sequential adsorption mechanism. Two models, LdL_d and KdK_d, are analyzed. In the LdL_d model, it is assumed that the initial square lattice is non-ideal and some fraction of sites, dd, is occupied by non-conducting point defects (impurities). In the KdK_d model, the initial square lattice is perfect. However, it is assumed that some fraction of the sites in the kk-mers, dd, consists of defects, i.e., are non-conducting. The length of the kk-mers, kk, varies from 2 to 256. Periodic boundary conditions are applied to the square lattice. The dependencies of the percolation threshold concentration of the conducting sites, pcp_c, vs the concentration of defects, dd, were analyzed for different values of kk. Above some critical concentration of defects, dmd_m, percolation is blocked in both models, even at the jamming concentration of kk-mers. For long kk-mers, the values of dmd_m are well fitted by the functions dmkmαkαd_m \propto k_m^{-\alpha}-k^{-\alpha} (α=1.28±0.01\alpha = 1.28 \pm 0.01, km=5900±500k_m = 5900 \pm 500) and dmlog(km/k)d_m \propto \log (k_m/k) (km=4700±1000k_m = 4700 \pm 1000 ), for the LdL_d and KdK_d models, respectively. Thus, our estimation indicates that the percolation of kk-mers on a square lattice is impossible even for a lattice without any defects if k6×103k\gtrapprox 6 \times 10^3.

Keywords

Cite

@article{arxiv.1412.7267,
  title  = {Impact of defects on percolation in random sequential adsorption of linear k-mers on square lattice},
  author = {Yuri Yu. Tarasevich and Valeri V. Laptev and Nikolai V. Vygornitskii and Nikolai I. Lebovka},
  journal= {arXiv preprint arXiv:1412.7267},
  year   = {2015}
}

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Submitted to Physical Review E