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考虑次近邻相互作用的凯库勒图案化石墨烯的电子光谱。

Electronic spectrum of Kekulé patterned graphene considering second neighbor-interactions.

作者信息

Andrade Elías, Naumis Gerardo G, Carrillo-Bastos R

机构信息

Departamento de Sistemas Complejos, Instituto de Fisica, Universidad Nacional Autónoma de México, Apartado Postal 20-364, 01000 Ciudad de México, México.

Facultad de Ciencias, Universidad Autónoma de Baja California, Apartado Postal 1880, 22800 Ensenada, Baja California, México.

出版信息

J Phys Condens Matter. 2021 May 4;33(22). doi: 10.1088/1361-648X/abef9a.

Abstract

The effects of second-neighbor interactions in Kekulé-Y patterned graphene electronic properties are studied starting from a tight-binding Hamiltonian. Thereafter, a low-energy effective Hamiltonian is obtained by projecting the high energy bands at the Γ point into the subspace defined by the Kekulé wave vector. The spectrum of the low energy Hamiltonian is in excellent agreement with the one obtained from a numerical diagonalization of the full tight-binding Hamiltonian. The main effect of the second-neighbour interaction is that a set of bands gains an effective mass and a shift in energy, thus lifting the degeneracy of the conduction bands at the Dirac point. This band structure is akin to a 'pseudo spin-one Dirac cone', a result expected for honeycomb lattices with a distinction between one third of the atoms in one sublattice. Finally, we present a study of Kekulé patterned graphene nanoribbons. This shows that the previous effects are enhanced as the width decreases. Moreover, edge states become dispersive, as expected due to second neighbors interaction, but here the Kek-Y bond texture results in an hybridization of both edge states. The present study shows the importance of second neighbors in realistic models of Kekulé patterned graphene, specially at surfaces.

摘要

从紧束缚哈密顿量出发,研究了Kekulé-Y型图案化石墨烯电子性质中次近邻相互作用的影响。此后,通过将Γ点处的高能带投影到由Kekulé波矢定义的子空间中,得到了低能有效哈密顿量。低能哈密顿量的能谱与通过对完整紧束缚哈密顿量进行数值对角化得到的能谱高度吻合。次近邻相互作用的主要影响是,一组能带获得了有效质量和能量偏移,从而消除了狄拉克点处导带的简并性。这种能带结构类似于“赝自旋-1狄拉克锥”,这是具有一个子晶格中三分之一原子有区别的蜂窝晶格所预期的结果。最后,我们对Kekulé图案化石墨烯纳米带进行了研究。结果表明,随着宽度减小,上述效应会增强。此外,边缘态变得色散,这是由于次近邻相互作用所预期的,但这里Kek-Y键结构导致了两种边缘态的杂化。本研究表明了次近邻在Kekulé图案化石墨烯实际模型中的重要性,特别是在表面。

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