Luo Yufeng, Han Shihao, Hu Rui, Yuan Hongmei, Jiao Wenyan, Liu Huijun
Key Laboratory of Artificial Micro- and Nano-Structures of Ministry of Education and School of Physics and Technology, Wuhan University, Wuhan 430072, China.
Nanomaterials (Basel). 2021 Dec 29;12(1):101. doi: 10.3390/nano12010101.
In recent years, the Janus monolayers have attracted tremendous attention due to their unique asymmetric structures and intriguing physical properties. However, the thermal stability of such two-dimensional systems is less known. Using the Janus monolayers SnXY (X, Y = O, S, Se) as a prototypical class of examples, we investigate their structure evolutions by performing ab-initio molecular dynamics (AIMD) simulations at a series of temperatures. It is found that the system with higher thermal stability exhibits a smaller difference in the bond length of Sn-X and Sn-Y, which is consistent with the orders obtained by comparing their electron localization functions (ELFs) and atomic displacement parameters (ADPs). In principle, the different thermal stability of these Janus structures is governed by their distinct anharmonicity. On top of these results, we propose a simple rule to quickly predict the maximum temperature up to which the Janus monolayer can stably exist, where the only input is the ADP calculated by the second-order interatomic force constants rather than time-consuming AIMD simulations at various temperatures. Furthermore, our rule can be generalized to predict the thermal stability of other Janus monolayers and similar structures.
近年来,由于其独特的不对称结构和有趣的物理性质,Janus单层膜引起了极大的关注。然而,这种二维体系的热稳定性却鲜为人知。以Janus单层膜SnXY(X、Y = O、S、Se)作为典型的例子,我们通过在一系列温度下进行从头算分子动力学(AIMD)模拟来研究它们的结构演化。研究发现,具有较高热稳定性的体系在Sn-X和Sn-Y的键长上表现出较小的差异,这与通过比较它们的电子定域函数(ELF)和原子位移参数(ADP)得到的顺序一致。原则上,这些Janus结构不同的热稳定性由其不同的非谐性决定。基于这些结果,我们提出了一个简单的规则来快速预测Janus单层膜能够稳定存在的最高温度,其中唯一的输入是由二阶原子间力常数计算得到的ADP,而不是在不同温度下进行耗时的AIMD模拟。此外,我们的规则可以推广到预测其他Janus单层膜和类似结构的热稳定性。