Two-dimensional Dirac materials: Tight-binding lattice models and material candidates

Runyu Fan, Lei Sun, Xiaofei Shao, Yangyang Li, Mingwen Zhao
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引用次数: 10

Abstract

The discovery of graphene has led to the devotion of intensive efforts, theoretical and experimental, to produce two-dimensional (2D) materials that can be used for developing functional materials and devices. This work provides a brief review of the recent developments in the lattice models of 2D Dirac materials and their relevant real material counterparts that are crucial for understanding the origins of 2D Dirac cones in electronic band structures as well as their material design and device applications. We focus on the roles of lattice symmetry, atomic orbital hybridization, and spin–orbit coupling in the presence of a Dirac cone. A number of lattice models, such as honeycomb, kagome, ruby, star, Cairo, and line-centered honeycomb, with different symmetries are reviewed based on the tight-binding approach. Inorganic and organic 2D materials, theoretically proposed or experimentally synthesized to satisfy these 2D Dirac lattice models, are summarized.

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二维Dirac材料:紧束缚晶格模型和候选材料
石墨烯的发现使人们在理论和实验上投入了大量精力来生产可用于开发功能材料和器件的二维(2D)材料。这项工作简要回顾了二维狄拉克材料晶格模型及其相关真实材料对应物的最新进展,这些进展对于理解电子能带结构中二维狄拉克锥的起源及其材料设计和器件应用至关重要。我们重点研究了晶格对称性、原子轨道杂化和狄拉克锥存在下的自旋-轨道耦合的作用。基于紧密结合方法,综述了许多具有不同对称性的晶格模型,如蜂窝、戈姆、红宝石、星形、开罗和线心蜂窝。综述了为满足这些二维Dirac晶格模型而从理论上提出或通过实验合成的无机和有机二维材料。
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