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arXiv · cond-mat/0105214

Conductivity of continuum percolating systems

Abstract

We study the conductivity of a class of disordered continuum systems represented by the Swiss-cheese model, where the conducting medium is the space between randomly placed spherical holes, near the percolation threshold. This model can be mapped onto a bond percolation model where the conductance $σ$ of randomly occupied bonds is drawn from a probability distribution of the form $σ^{-a}$. Employing the methods of renormalized field theory we show to arbitrary order in $ε$-expansion that the critical conductivity exponent of the Swiss-cheese model is given by $t^{\text{SC}} (a) = (d-2)ν+ \max [ϕ, (1-a)^{-1}]$, where $d$ is the spatial dimension and $ν$ and $ϕ$ denote the critical exponents for the percolation correlation length and resistance, respectively. Our result confirms a conjecture which is based on the 'nodes, links, and blobs' picture of percolation clusters.

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BibTeXRIS

Olaf Stenull, Hans-Karl Janssen. 2001-10-26. Conductivity of continuum percolating systems. https://doi.org/10.1103/physreve.64.056105

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