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与石墨烯相比,应变锡烯的稳定性

Stability of Strained Stanene Compared to That of Graphene.

作者信息

Kosarev Igor V, Dmitriev Sergey V, Semenov Alexander S, Korznikova Elena A

机构信息

Research Laboratory for Metals and Alloys under Extreme Impacts, Ufa State Aviation Technical University, 450008 Ufa, Russia.

Mechanical Engineering Research Institute of the Russian Academy of Sciences-Branch of Federal Research Center "Institute of Applied Physics of RAS", 603024 Nizhny Novgorod, Russia.

出版信息

Materials (Basel). 2022 Aug 26;15(17):5900. doi: 10.3390/ma15175900.

Abstract

Stanene, composed of tin atoms, is a member of 2D-Xenes, two-dimensional single element materials. The properties of the stanene can be changed and improved by applying deformation, and it is important to know the range of in-plane deformation that the stanene can withstand. Using the Tersoff interatomic potential for calculation of phonon frequencies, the range of stability of planar stanene under uniform in-plane deformation is analyzed and compared with the known data for graphene. Unlike atomically flat graphene, stanene has a certain thickness (buckling height). It is shown that as the tensile strain increases, the thickness of the buckled stanene decreases, and when a certain tensile strain is reached, the stanene becomes absolutely flat, like graphene. Postcritical behaviour of stanene depends on the type of applied strain: critical tensile strain leads to breaking of interatomic bonds and critical in-plane compressive strain leads to rippling of stanene. It is demonstrated that application of shear strain reduces the range of stability of stanene. The existence of two energetically equivalent states of stanene is shown, and consequently, the possibility of the formation of domains separated by domain walls in the stanene is predicted.

摘要

锡烯由锡原子组成,是二维单元素材料二维烯(2D-Xenes)的一员。通过施加变形可以改变和改善锡烯的性能,了解锡烯能够承受的面内变形范围很重要。利用Tersoff原子间势计算声子频率,分析了平面锡烯在均匀面内变形下的稳定性范围,并与石墨烯的已知数据进行了比较。与原子级平整的石墨烯不同,锡烯具有一定的厚度(屈曲高度)。结果表明,随着拉伸应变的增加,屈曲锡烯的厚度减小,当达到一定拉伸应变时,锡烯变得像石墨烯一样绝对平整。锡烯的临界后行为取决于所施加应变的类型:临界拉伸应变导致原子间键断裂,临界面内压缩应变导致锡烯起皱。结果表明,施加剪切应变会减小锡烯的稳定性范围。展示了锡烯存在两个能量等效状态,并因此预测了在锡烯中形成由畴壁分隔的畴的可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a3ba/9457046/218e7b4cb0c3/materials-15-05900-g001.jpg

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