Huy Huynh Anh, Nguyen Long Truong, Nguyen Duong Lam Thuy, Truong Tuan Quoc, Ong Le Kim, Van Hoang Vo, Nguyen Giang Hoang
Department of Physics, College of Education, Can Tho University, Can Tho City, Vietnam.
J Phys Condens Matter. 2019 Mar 6;31(9):095403. doi: 10.1088/1361-648X/aaf402. Epub 2018 Nov 26.
This molecular dynamics (MD) simulation carries a detailed analysis of a pressure-induced structural transition supercooled liquid and amorphous silicene (a-silicene). Low-density models of supercooled liquid and a-silicene containing 10 000 atoms are obtained by rapid cooling processes from the melts. Then, an a-silicene model at T = 1000 K, a supercooled liquid model at T = 1500 K and a liquid silicon model at T = 2000 K have been isothermally compressed step by step up to a high density in order to observe the pressure-induced structural changes. Specifically 'Cairo tiling' pentagonal and square lattices of silicene are discovered in our calculations. Structural properties of those penta-silicene and tetra-silicene models have been carefully analyzed through the radial distribution functions, interatomic distances, bond-angle distributions under high-pressure condition. The dependence of pressure on formation behaviors is calculated via pressure-volume and energy-density relationships. The first order transition from low-density supercooled liquid/amorphous silicene to high-density penta-silicene and continuous transition from low-density liquid to high-density tetra-silicene are discussed. Atomic mechanism and sp/sp hybridization evolution are inspected whereas the role of low-membered ring defects/boundary promises remarkable application and advanced research in future.
该分子动力学(MD)模拟对压力诱导的过冷液体和非晶硅烯(a-硅烯)的结构转变进行了详细分析。通过从熔体中快速冷却过程获得了包含10000个原子的过冷液体和a-硅烯的低密度模型。然后,将处于T = 1000 K的a-硅烯模型、处于T = 1500 K的过冷液体模型和处于T = 2000 K的液态硅模型逐步等温压缩至高密度,以观察压力诱导的结构变化。具体而言,在我们的计算中发现了硅烯的“开罗平铺”五角形和正方形晶格。通过径向分布函数、原子间距离、高压条件下的键角分布,对那些五硅烯和四硅烯模型的结构性质进行了仔细分析。通过压力-体积和能量密度关系计算压力对形成行为的依赖性。讨论了从低密度过冷液体/非晶硅烯到高密度五硅烯的一级转变以及从低密度液体到高密度四硅烯的连续转变。研究了原子机制和sp/sp杂化演化,而低元环缺陷/边界的作用有望在未来得到显著应用和深入研究。