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Electronic and mechanical properties of stiff rhenium carbide monolayers: A first-principles investigation

机译:硬质碳化rh单层的电子和机械性能:第一性原理研究

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摘要

In this study, we predicted two new stable metallic Re-C based monolayer structures with a rectangular (r-ReC2) and a hexagonal (h-Re2C) crystal symmetry using first-principle calculations based on density functional theory. Our results obtained from mechanical and phonon calculations and high-temperature molecular dynamic simulations clearly proved the stability of these two-dimensional (2D) crystals. Interestingly, Re-C monolayers in common transition metal carbide structures (i.e. MXenes) were found to be unstable, contrary to expectations. We found that the stable structures, i.e. r-ReC2 and h-Re2C, display superior mechanical properties over the well-known 2D materials. The Young's modulus for r-ReC2 and h-Re2C are extremely high and were calculated as 351 (1310) and 617 (804) N/m (GPa), respectively. Both materials have larger Young's modulus values than the most of the well-known 2D materials. We showed that the combination of the short strong directional p-d bonds, the high coordination number of atoms in the unit-cell and high valence electron density result in strong mechanical properties. Due to its crystal structure, the r-ReC2 monolayer has anisotropic mechanical properties and the crystallographic direction parallel to the C-2 dimers is stiffer compared to perpendicular direction due to strong covalent bonding within C-2 dimers. h-Re2C was derived from the corresponding bulk structure for which we determined the critical thickness for the dynamically stable bulk-derived monolayer structures. In addition, we also investigated the electronic of these two stable structures. Both exhibit metallic behavior and Re-5d orbitals dominate the states around the Fermi level. Due to their ultra high mechanical stability and stiffness, these novel Re-C monolayers can be exploited in various engineering applications.
机译:在这项研究中,我们使用基于密度泛函理论的第一原理计算,预测了两个新的稳定的金属Re-C基单层结构,具有矩形(r-ReC2)和六边形(h-Re2C)晶体对称性。我们从机械和声子计算以及高温分子动力学模拟获得的结果清楚地证明了这些二维(2D)晶体的稳定性。有趣的是,发现与常见的过渡金属碳化物结构(即MXenes)中的Re-C单层不稳定。我们发现,稳定的结构,即r-ReC2和h-Re2C,比众所周知的2D材料显示出优异的机械性能。 r-ReC2和h-Re2C的杨氏模量极高,分别计算为351(1310)和617(804)N / m(GPa)。两种材料都具有比大多数众所周知的2D材料更大的杨氏模量值。我们表明,短的强方向性p-d键,晶胞中原子的高配位数和高价电子密度的组合可产生强机械性能。由于其晶体结构,r-ReC2单分子层具有各向异性的机械性能,并且由于C-2二聚体内部牢固的共价键合,平行于C-2二聚体的晶体学方向比垂直方向更硬。 h-Re2C源自相应的本体结构,为此我们确定了动态稳定的本体衍生单层结构的临界厚度。另外,我们还研究了这两种稳定结构的电子学。两者都表现出金属行为,并且Re-5d轨道主导着费米能级附近的状态。由于其超高的机械稳定性和刚度,这些新颖的Re-C单层膜可用于各种工程应用中。

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