Connectivity percolation in suspensions of hard platelets
arXiv:1204.2961 · doi:10.1103/PhysRevE.85.061407
Abstract
We present a study on connectivity percolation in suspensions of hard platelets by means of Monte Carlo simulation. We interpret our results using a contact-volume argument based on an effective single--particle cell model. It is commonly assumed that the percolation threshold of anisotropic objects scales as their inverse aspect ratio. While this rule has been shown to hold for rod-like particles, we find that for hard plate-like particles the percolation threshold is non-monotonic in the aspect ratio. It exhibits a shallow minimum at intermediate aspect ratios and then saturates to a constant value. This effect is caused by the isotropic-nematic transition pre-empting the percolation transition. Hence the common strategy to use highly anisotropic, conductive particles as fillers in composite materials in order to produce conduction at low filler concentration is expected to fail for plate-like fillers such as graphene and graphite nanoplatelets.
References in corpus (6)
- Depletion-induced percolation in networks of nanorods
- Percolative properties of hard oblate ellipsoids of revolution with a soft shell
- Structure and thermodynamics of platelet dispersions
- Annealing of single lamella nanoparticles of polyethylene
- Integral equations for simple fluids in a general reference functional approach
- Structure factor and thermodynamics of rigid dendrimers in solution
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