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Crystal momentum-dependent anisotropy of the Dirac cone in the rectangular carbon allotropes

机译:矩形碳同素异形体中狄拉克锥的晶体动量依赖各向异性

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Thanks to the perfect hexagonal lattice, graphene holds an isotropic Dirac cone. This means that the group velocities of charge carriers in the vicinity of Dirac points are isotropic in momentum space. When the lattice structure varies, the Dirac cone will undergo a dramatic change accordingly. This is the case of 6,6,12-graphyne. Due to the rectangular lattice, Dirac cones of 6,6,12-graphyne are anisotropic. To understand its underlying nature, three additional derivates of 6,6,12-graphyne with the rectangular lattice are studied by using an ab initio method. Although the existence of a Dirac cone critically depends on the hopping energies within the unit cell, the anisotropy of the Dirac cone is another story. This is because the anisotropy of the Dirac cone describes the relation between carriers' group velocities, and is thus direction-dependent in momentum space. Our study demonstrates that the anisotropy of the Dirac cone is tunable through changing the lattice constants or the lattice ratios in the rectangular carbon allotropes. This will be the focus of future research as the anisotropy of the Dirac cone can be regarded as an information carrier.
机译:归功于完美的六边形格子,石墨烯拥有一个各向同性的狄拉克锥。这意味着狄拉克点附近的载流子的群速度在动量空间中是各向同性的。当晶格结构发生变化时,狄拉克锥体将相应地发生剧烈变化。 6,6,12-石墨烯就是这种情况。由于是矩形格子,因此6,6,12-石墨烯的狄拉克锥是各向异性的。为了了解其基本性质,通过使用从头算方法研究了具有矩形晶格的其他6、6、12-石墨烯衍生物。尽管狄拉克锥的存在主要取决于晶胞内的跳跃能量,但狄拉克锥的各向异性是另一回事。这是因为狄拉克锥的各向异性描述了载体群速度之间的关系,因此在动量空间中与方向有关。我们的研究表明,狄拉克锥的各向异性可以通过改变矩形碳同素异形体的晶格常数或晶格比来调节。这将成为未来研究的重点,因为狄拉克锥的各向异性可以视为信息载体。

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