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带电胶体粒子结晶动力学的布朗动力学模拟。

Brownian dynamics simulation of the crystallization dynamics of charged colloidal particles.

机构信息

Key Laboratory of Microgravity, Institute of Mechanics, Chinese Academy of Sciences, 100190 Beijing, People's Republic of China.

出版信息

J Colloid Interface Sci. 2010 Oct 15;350(2):409-16. doi: 10.1016/j.jcis.2010.07.009. Epub 2010 Jul 11.

Abstract

Crystal formation process of charged colloidal particles is investigated using Brownian dynamics (BD) simulations. The particles are assumed to interact with the pair-additive repulsive Yukawa potential. The time evolution of crystallization process and the crystal structure during the simulation are characterized by means of the radial distribution functions (RDF) and mean square displacement (MSD). The simulations show that when the interaction is featured with long-range, particles can spontaneously assemble into body-centered-cubic (BCC) arrays at relatively low particle number density. When the interaction is short-ranged, with increasing the number density particles become trapped into a stagnant disordered configuration before the crystallization could be actualized. The simulations further show that as long as the trapped configurations are bypassed, the face-centered-cubic (FCC) structures can be achieved and are actually more stable than BCC structures.

摘要

使用布朗动力学(BD)模拟研究带电胶体粒子的晶体形成过程。假设粒子之间存在具有对加排斥的 Yukawa 势相互作用。通过径向分布函数(RDF)和均方根位移(MSD)来描述结晶过程的时间演化和模拟过程中的晶体结构。模拟结果表明,当相互作用具有长程时,在相对较低的粒子数密度下,粒子可以自发组装成体心立方(BCC)排列。当相互作用是短程时,随着粒子数密度的增加,在结晶实现之前,粒子会被困在静止的无序状态中。模拟还进一步表明,只要绕过被困的结构,就可以实现面心立方(FCC)结构,并且实际上比 BCC 结构更稳定。

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