论文标题
PAI-GRAPHENE:一种新的拓扑半金属二维碳同质量,具有高度可调的各向异性狄拉克锥
PAI-graphene: a new topological semimetallic two-dimensional carbon allotrope with highly tunable anisotropic Dirac cones
论文作者
论文摘要
使用进化算法进行晶体结构预测,我们提出了一种新的稳定的二维(2D)碳同质同种异体,该碳质同种异体由聚合的As-Indacenes(PAI)组成,以曲折的模式,即Pai-graphene,即能量,其能量低于报告的大多数报道的2d praphene praphene的2d同种同种。至关重要的是,晶体结构实现了一个非晶状层基团,该层群可以实施带有两个狄拉克锥体的频带结构的非平凡的全局拓扑结构,而两个狄拉克锥则位于费米水平。电子/孔口袋的不存在使Pai-Graphene成为原始的晶体拓扑半学,其各向异性费米速度高$ 7.0 \ times 10^{5} $ m/s。我们表明,虽然同素的半金属特性在菌株的应用中具有鲁棒性,但狄拉克锥的位置和费米速度的位置可以通过应变显着修饰。此外,通过将应变沿X型和Y方向组合,两个频段反转以$γ$进行,导致dirac节点的an灭,这表明将拓扑半度性转化为半导体的应变控制的转化可能性。最后,我们以广义的Zak相论点的形式制定了拓扑结节相的宽大对应关系,找到了与针对不同边缘末端计算的拓扑边缘状态的完美一致性。
Using evolutionary algorithm for crystal structure prediction, we present a new stable two-dimensional (2D) carbon allotrope composed of polymerized as-indacenes (PAI) in a zigzag pattern, namely PAI-graphene whose energy is lower than most of the reported 2D allotropes of graphene. Crucially, the crystal structure realizes a nonsymmorphic layer group that enforces a nontrivial global topology of the band structure with two Dirac cones lying perfectly at the Fermi level. The absence of electron/hole pockets makes PAI-graphene a pristine crystalline topological semimetal having anisotropic Fermi velocities with a high value of $7.0 \times 10^{5}$ m/s. We show that while the semimetallic property of the allotrope is robust against the application of strain, the positions of the Dirac cone and the Fermi velocities can be modified significantly with strain. Moreover, by combining strain along both the x- and y-directions, two band inversions take place at $Γ$ leading to the annihilation of the Dirac nodes demonstrating the possibility of strain-controlled conversion of a topological semimetal into a semiconductor. Finally we formulate the bulk-boundary correspondence of the topological nodal phase in the form of a generalized Zak-phase argument finding a perfect agreement with the topological edge states computed for different edge-terminations.