Numerical simulation of electrical conductivity in microscopically inhomogeneous materials

Itzhak Webman, Joshua Jortner, and Morrel H. Cohen
Phys. Rev. B 11, 2885 – Published 15 April 1975
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Abstract

The electrical transport properties of some microscopically inhomogeneous disordered materials were simulated by numerical calculations of the conductivity of cubic resistor networks with correlated bonds, both above and below the percolation threshold. The major effect of increasingly strong correlation among the metallic bonds is to shift the percolation threshold to lower values of the allowed metallic volume fraction, resulting in C*=0.15±0.02 for the continuous-percolation limit. The numerical data were utilized for a quantitative fit of the electrical-conductivity data of metal-ammonia solutions and of alkali-tungsten bronzes, which undergo a continuous metal-nonmetal transition via the inhomogeneous transport regime.

  • Received 23 December 1974

DOI:https://doi.org/10.1103/PhysRevB.11.2885

©1975 American Physical Society

Authors & Affiliations

Itzhak Webman and Joshua Jortner

  • Department of Chemistry, Tel-Aviv University, Tel-Aviv, Israel

Morrel H. Cohen

  • The James Franck Institute and Department of Physics, The University of Chicago, Chicago, Illinois 60637

Comments & Replies

Numerical simulation of continuous percolation conductivity

Itzhak Webman, Joshua Jortner, and Morrel H. Cohen
Phys. Rev. B 14, 4737 (1976)

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Vol. 11, Iss. 8 — 15 April 1975

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