Cho Hyun Woo, Nam Seungwoong, Kwon Gyemin, Kim Heesuk, Sung Bong June
J Nanosci Nanotechnol. 2014 Jul;14(7):5103-8. doi: 10.1166/jnn.2014.8419.
The effect of non-conductive nano-particles on the electrical percolating network formation and the electrical conductivity of conductive nano-particles in polymer matrices is investigated using Monte Carlo simulations and a percolation theory. Both conductive and non-conductive nano-particles are modeled as spheres but with different diameters. Non-conductive nano-particles are up to four times bigger than conductive nano-particles. Equilibrated configurations for mixtures of nano-particles are obtained via Monte Carlo simulations and are used to estimate the probability (P) of forming an electrical percolating network and the percolation threshold conductive nano-particle volume fraction (phi(c)). As the volume fraction (phi(nc)) of non-conductive nano-particles increases, phi(c) decreases significantly, thus increasing the electrical conductivity. When non-conductive nano-particles mix with conductive nano-particles, they make the effective interaction energy W(r) between conductive nano-particles attractive, which should facilitate the formation of the electrical percolating network. For a given phi(nc), phi(c) increases slightly with an increase in the non-conductive nano-particle diameter (sigma(nc)). We also carry out simulations with non-conductive nano-particles of different structures and find that phi(c) is relatively insensitive to the non-conductive nano-particle structure.
利用蒙特卡罗模拟和渗流理论,研究了非导电纳米粒子对聚合物基体中导电纳米粒子形成电渗流网络及电导率的影响。导电和非导电纳米粒子均被建模为球体,但直径不同。非导电纳米粒子的尺寸比导电纳米粒子大至多四倍。通过蒙特卡罗模拟获得纳米粒子混合物的平衡构型,并用于估计形成电渗流网络的概率(P)和渗流阈值导电纳米粒子体积分数(phi(c))。随着非导电纳米粒子的体积分数(phi(nc))增加,phi(c)显著降低,从而提高了电导率。当非导电纳米粒子与导电纳米粒子混合时,它们使导电纳米粒子之间的有效相互作用能W(r)具有吸引力,这应有助于电渗流网络的形成。对于给定的phi(nc),phi(c)随非导电纳米粒子直径(sigma(nc))的增加而略有增加。我们还对不同结构的非导电纳米粒子进行了模拟,发现phi(c)对非导电纳米粒子的结构相对不敏感。