论文标题

四元单层弹性性能的完全原子分子动力学模拟

Fully Atomistic Molecular Dynamics Simulations of Elastic Properties of Tetragraphene Monolayer

论文作者

Brandão, Wjefferson H. S., Aguiar, Acrisio L., Fonseca, Alexandre F., Galvão, D. S., De Sousa, J. M.

论文摘要

最近提出了一种称为Tetrahexcarbon的准2D半导体碳同素同素异形体,也称为Tetragraphene,最近提出了一个不寻常的结构,结合了平方和六角形环。基于第一原理密度功能理论(DFT)计算,已经预测了四烯的机械和电子特性。但是,仍然缺乏对不同温度下的机械行为的全面研究。在这项工作中,使用完全原子的反应性分子动力学(MD)模拟,我们研究了从线性状态到完整结构衰竭(断裂)的拉伸应变下单层四磷酸的机械性能。考虑了不同的温度,并将结果与​​另外两个已知的平面碳同素同素(石墨烯和五戊烯)进行了比较。一个有趣的结果是,四烯键通过温度或张力施加从结晶到无定形结构的过渡。在室温下,沿tetraghene的两个正交单位细胞方向沿临界菌株为38 \%和30 \%,高于石墨烯和五角烯酸烯烯。四烯杨的模量值沿其方向的模量为三到六倍,比石墨烯小于57 \%,而在室温下的模量为57 \%。获得了沿四烯键的两个方向的最终拉伸强度值,并且也显示出小于石墨烯和五烯 - 石膏的小。

A quasi-2D semiconductor carbon allotrope called tetrahexcarbon, also named tetragraphene, was recently proposed featuring an unusual structure combining squared and hexagonal rings. Mechanical and electronic properties of tetragraphene have been predicted based on first-principles Density Functional Theory (DFT) calculations. However, a comprehensive study of its mechanical behavior under different temperatures is still lacking. In this work, using fully atomistic reactive molecular dynamics (MD) simulations, we investigate the mechanical properties of monolayer tetragraphene under tensile strain from the linear regime up to the complete structural failure (fracture). Different temperatures were considered and the results were compared to that of two other known planar carbon allotropes: graphene and penta-graphene. One interesting result is that tetragraphene experiences a transition from crystalline to an amorphous structure by either temperature or tension application. At room temperature, the critical strains along the two orthogonal unit-cell directions of tetragraphene are 38\% and 30\%, which is higher than that for graphene and penta-graphene. Tetragraphene Young's modulus values along its directions are from three to six times smaller than that of graphene and about 57\% that of penta-graphene at room temperature. Ultimate tensile strength values along the two directions of tetragraphene were obtained and also shown to be smaller than that of graphene and penta-graphene.

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