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Simulations and electrical conductivity of percolated networks of finite rods with various degrees of axial alignment
Author(s) -
Sadie I. White,
B. A. DiDonna,
Minfang Mu,
T. C. Lubensky,
Karen I. Winey
Publication year - 2009
Publication title -
physical review b
Language(s) - English
Resource type - Journals
eISSN - 1538-4489
pISSN - 1098-0121
DOI - 10.1103/physrevb.79.024301
Subject(s) - materials science , volume fraction , electrical conductor , percolation threshold , electrical resistivity and conductivity , percolation (cognitive psychology) , conductivity , aspect ratio (aeronautics) , composite material , orientation (vector space) , rod , nanocomposite , geometry , physics , mathematics , medicine , alternative medicine , pathology , quantum mechanics , neuroscience , biology
We present a three-dimensional simulation and calculation of electrical conductivity above the filler percolation threshold for networks containing finite, conductive cylinders as a function of axial orientation (S) and aspect ratio (L/D). At a fixed volume fraction and L/D, the simulations exhibit a critical degree of orientation, S-c, above which the electrical conductivity decreases dramatically. With increasing filler concentration and aspect ratio, this critical orientation shifts to higher degrees of alignment. Additionally, at a fixed volume fraction and L/D, the simulated electrical conductivity displays a maximum at slight uniaxial orientation, which is less pronounced at higher volume fractions and aspect ratios. Our approach can be used as a predictive tool to design the optimal filler concentration and degree of orientation required to maximize electrical conductivity in polymer nanocomposites with conductive cylindrical fillers of finite dimension.

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