Sandia National Laboratories, Albuquerque, New Mexico 87185, USA.
Aachener Verfahrenstechnik: Molecular Simulations and Transformations, Faculty of Mechanical Engineering, RWTH Aachen University, D-52056 Aachen, Germany.
J Chem Phys. 2014 May 21;140(19):194904. doi: 10.1063/1.4874638.
The structure and interactions of coated silica nanoparticles have been studied in water using molecular dynamics simulations. For 5 nm diameter amorphous silica nanoparticles, we studied the effects of varying the chain length and grafting density of polyethylene oxide on the nanoparticle coating's shape and on nanoparticle-nanoparticle effective forces. For short ligands of length n = 6 and n = 20 repeat units, the coatings are radially symmetric while for longer chains (n = 100) the coatings are highly anisotropic. This anisotropy appears to be governed primarily by chain length, with coverage playing a secondary role. For the largest chain lengths considered, the strongly anisotropic shape makes fitting to a simple radial force model impossible. For shorter ligands, where the coatings are isotropic, we found that the force between pairs of nanoparticles is purely repulsive and can be fit to the form (R/2r(core) - 1)(-b) where R is the separation between the center of the nanoparticles, r(core) is the radius of the silica core, and b is measured to be between 2.3 and 4.1.
使用分子动力学模拟研究了水相中的包覆二氧化硅纳米粒子的结构和相互作用。对于 5nm 直径的无定形二氧化硅纳米粒子,我们研究了改变聚环氧乙烷的链长和接枝密度对纳米粒子涂层形状以及纳米粒子-纳米粒子有效力的影响。对于长度为 n=6 和 n=20 重复单元的短配体,涂层呈径向对称,而对于较长的链(n=100),涂层具有高度各向异性。这种各向异性似乎主要由链长决定,覆盖度起次要作用。对于所考虑的最大链长,强烈的各向异性形状使得难以拟合到简单的径向力模型。对于较短的配体,涂层是各向同性的,我们发现纳米粒子对之间的力是纯粹的排斥力,可以拟合为 (R/2r(core) - 1)(-b) 的形式,其中 R 是纳米粒子中心之间的分离距离,r(core) 是二氧化硅核的半径,b 的测量值在 2.3 和 4.1 之间。