Shen B, Wang Z Y, Dong F, Guo Y R, Zhang R J, Zheng Y X, Wang S Y, Wang C Z, Ho K M, Chen L Y
Key Laboratory of Micro and Nano Photonic Structures (MoE) and Department of Optical Science and Engineering, Fudan University , Shanghai, 200433, China.
Ames Laboratory, U.S. Department of Energy and Department of Physics and Astronomy, Iowa State University , Ames, Iowa 50011, United States.
J Phys Chem B. 2015 Nov 25;119(47):14945-51. doi: 10.1021/acs.jpcb.5b09138. Epub 2015 Nov 13.
A first-order phase transition from a high-density liquid to a low-density liquid has been proposed to explain the various thermodynamic anomies of water. It also has been proposed that such liquid-liquid phase transition would exist in supercooled silicon. Computer simulation studies show that, across the transition, the diffusivity drops roughly 2 orders of magnitude, and the structures exhibit considerable tetrahedral ordering. The resulting phase is a highly viscous, low-density liquid silicon. Investigations on the atomic diffusion of such a novel form of liquid silicon are of high interest. Here we report such diffusion results from molecular dynamics simulations using the classical Stillinger-Weber (SW) potential of silicon. We show that the atomic diffusion of the low-density liquid is highly correlated with local tetrahedral geometries. We also show that atoms diffuse through hopping processes within short ranges, which gradually accumulate to an overall random motion for long ranges as in normal liquids. There is a close relationship between dynamical heterogeneity and hopping process. We point out that the above diffusion mechanism is closely related to the strong directional bonding nature of the distorted tetrahedral network. Our work offers new insights into the complex behavior of the highly viscous low density liquid silicon, suggesting similar diffusion behaviors in other tetrahedral coordinated liquids that exhibit liquid-liquid phase transition such as carbon and germanium.
有人提出从高密度液体到低密度液体的一级相变来解释水的各种热力学异常现象。也有人提出这种液 - 液相变会存在于过冷硅中。计算机模拟研究表明,在相变过程中,扩散率大约下降2个数量级,并且结构呈现出相当程度的四面体有序性。所形成的相是一种高粘性、低密度的液态硅。对这种新型液态硅的原子扩散进行研究具有很高的价值。在此我们报告使用经典的硅斯廷林格 - 韦伯(SW)势进行分子动力学模拟得到的扩散结果。我们表明低密度液体的原子扩散与局部四面体几何结构高度相关。我们还表明原子通过短程跳跃过程扩散,这些跳跃过程随着时间积累,在长程上逐渐累积为如同正常液体中的整体随机运动。动力学非均匀性与跳跃过程之间存在密切关系。我们指出上述扩散机制与扭曲四面体网络的强方向性键合性质密切相关。我们的工作为高粘性低密度液态硅的复杂行为提供了新的见解,表明在其他呈现液 - 液相变的四面体配位液体(如碳和锗)中存在类似的扩散行为。