Desgranges Caroline, Delhommelle Jerome
Department of Chemical Engineering, University of South Carolina, 301 Main Street South, Columbia, South Carolina 29208, USA.
Phys Rev Lett. 2007 Jun 8;98(23):235502. doi: 10.1103/PhysRevLett.98.235502. Epub 2007 Jun 7.
We use molecular dynamics simulations to shed light on polymorph selection during the crystallization of the Lennard-Jones fluid. By varying pressure at fixed supercooling, we form large crystallites either of the stable face centered cubic form or of the metastable body centered cubic form and even fine-tune the fractions of stable and metastable polymorphs in the crystallite. We demonstrate that the conditions of crystallization, leading to large bcc crystallites, lie within the occurrence domain of the metastable bcc polymorph. We also find that the predominantly fcc crystallites contain a notable amount of the hexagonal close packed form, due to the cross nucleation of the hcp form on the fcc form. By varying temperature at fixed pressure, we prevent cross nucleation and form pure fcc crystallites. Our results reveal that polymorph selection may take place, and be controlled, during the growth step.
我们使用分子动力学模拟来阐明 Lennard-Jones 流体结晶过程中的多晶型选择。通过在固定过冷度下改变压力,我们形成了大的微晶,其要么是稳定的面心立方形式,要么是亚稳的体心立方形式,甚至还能微调微晶中稳定和亚稳多晶型的比例。我们证明,导致大的体心立方微晶的结晶条件处于亚稳体心立方多晶型的出现范围内。我们还发现,由于六方密堆积形式在面心立方形式上的交叉成核,主要为面心立方的微晶包含相当数量的六方密堆积形式。通过在固定压力下改变温度,我们防止了交叉成核并形成了纯的面心立方微晶。我们的结果表明,多晶型选择可能在生长步骤中发生并受到控制。