McKetta Department of Chemical Engineering, University of Texas at Austin, Austin, Texas 78712, USA.
J Chem Phys. 2018 May 21;148(19):191101. doi: 10.1063/1.5028279.
Particle size polydispersity can help to inhibit crystallization of the hard-sphere fluid into close-packed structures at high packing fractions and thus is often employed to create model glass-forming systems. Nonetheless, it is known that hard-sphere mixtures with modest polydispersity still have ordered ground states. Here, we demonstrate by computer simulation that hard-sphere mixtures with increased polydispersity fractionate on the basis of particle size and a bimodal subpopulation favors the formation of topologically close-packed C14 and C15 Laves phases in coexistence with a disordered phase. The generality of this result is supported by simulations of hard-sphere mixtures with particle-size distributions of four different forms.
颗粒大小多分散性有助于抑制硬球流体在高堆积分数下结晶成密堆积结构,因此常被用于创建模型玻璃形成体系。尽管如此,人们已经知道,具有中等多分散性的硬球混合物仍然具有有序的基态。在这里,我们通过计算机模拟证明,具有增加的多分散性分数的硬球混合物会根据颗粒大小进行分离,并且双峰亚群有利于拓扑密排 C14 和 C15 Laves 相的形成,与无序相共存。这一结果的普遍性得到了四种不同形式的硬球混合物的模拟的支持。