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A DFT study of structural and thermal properties of 2D layers

机译:2D层结构和热性能的DFT研究

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摘要

Two-dimensional (2D) materials are known to owe exceptional properties which are prerequisites for the future applications. Despite significant efforts and unprecedented achievements to realize resourceful beyond-graphene 2D materials, the comprehensive knowledge on such materials is lacking due to which several device grade applications are still in pipeline. This work was carried out with motivation to investigate the thermal stability of contemporary 2D monolayered materials including graphene, borophene, aluminene, germanene, BN, SiC and MoS2 using Molecular Dynamics simulations. The thermal broadening, bond breakage and bond formation for the slabs are analyzed on the basis of radial distribution function (RDF). It is found that several materials out of the list are capable to withstand high temperatures depicting the essential thermal stability. The values of thermal stability of the materials were compared by plotting the temperature and energy curves whereas phase transition temperature and heat capacity of the slabs were found by taking germanene as benchmark. The phase transition temperatures are found as 4510 K, 2273 K, 933 K, 1670 K, 3246 K, 4050 K, and 1460 K for graphene, borophene, aluminene, germanene, BN, SiC, and MoS2 respectively.
机译:二维(2D)材料具有特殊的性能,这是未来应用的先决条件。尽管在实现石墨烯2D材料之外的资源化方面做出了巨大努力,取得了前所未有的成就,但由于缺乏对此类材料的全面了解,一些设备级应用仍在开发中。本研究旨在通过分子动力学模拟研究当代二维单层材料的热稳定性,包括石墨烯、硼酚、铝烯、锗烷、BN、SiC和MoS2。基于径向分布函数(RDF)分析了板坯的热加宽、粘结破坏和粘结形成。研究发现,列表中的几种材料能够承受高温,这说明了基本的热稳定性。通过绘制温度和能量曲线,比较了材料的热稳定性值,而以锗烷为基准确定了板坯的相变温度和热容。石墨烯、硼酚、铝烯、锗烯、BN、SiC和MoS2的相变温度分别为4510 K、2273 K、933 K、1670 K、3246 K、4050 K和1460 K。

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