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Mechanical properties of monolayer penta-graphene and phagraphene: a first-principles study

机译:五层石墨烯和单层石墨烯的力学性能:第一性原理研究

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Two new graphene allotropes, penta-graphene and phagraphene, have been proposed recently with unique electronic properties, e.g. quasi-direct band gap, direction-dependent Dirac cones and tunable Fermi velocities. However, their mechanical properties have not been fully studied yet. In this work, we have performed extensive density functional theory calculations to evaluate the mechanical properties of these two materials and compared with graphene, graphane, and pentaheptite. Our simulations show that the ultimate tensile strength (UTS) and the strain corresponding to UTS in both penta-graphene and phagraphene are smaller than that of graphene. A complete set of nonlinear anisotropic elastic constants up to the fourth order have been determined for these two allotropes using the tenets of continuum mechanics by fitting the stress-strain responses under uniaxial and biaxial tension until the point of fracture. We propose a new physical explanation for penta-graphene's negative Poisson's ratio based on the atomic de-wrinkling mechanism, driven by the local Hellman-Feynman force on each atom. Additionally, we used charge density plot and virtual Scanning Tunneling Microscopy images to analyze the initiation of fracture under uniaxial and biaxial tensile loading in these two materials. The charge density plots reveal that the charge density in sp(3) bonds is lower than that in the sp(2) bonds. In phagraphene, all the broken bonds were found to belong to the largest carbon ring in the structure.
机译:最近已经提出了两种具有独特电子性质的新的石墨烯同素异形体,五石墨烯和方石墨烯。准直接带隙,方向相关的狄拉克锥和可调费米速度。但是,它们的机械性能尚未得到充分研究。在这项工作中,我们已经进行了广泛的密度泛函理论计算,以评估这两种材料的机械性能,并与石墨烯,石墨烷和五庚烷进行了比较。我们的仿真表明,五石墨烯和碳石墨烯的极限抗拉强度(UTS)和对应于UTS的应变均小于石墨烯。通过连续力学的原理,通过拟合单轴和双轴拉力下的应力应变响应直至断裂点,已经确定了这两个同素异形体的完整的直至第四阶的非线性各向异性弹性常数。我们基于原子去皱机理,由每个原子上的局部Hellman-Feynman力驱动,对五石墨烯的负泊松比提出了新的物理解释。此外,我们使用电荷密度图和虚拟扫描隧道显微镜图像分析了这两种材料在单轴和双轴拉伸载荷下的断裂始端。电荷密度图显示sp(3)键中的电荷密度低于sp(2)键中的电荷密度。在碳烯中,所有断裂的键都属于该结构中最大的碳环。

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