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The Rare Two-Dimensional Materials with Dirac Cones

Authors :
Wang, Jinying
Deng, Shibin
Liu, Zhongfan
Liu, Zhirong
Source :
Natl. Sci. Rev. 2 (1), 22-39 (2015)
Publication Year :
2014

Abstract

Inspired by the great development of graphene, more and more works have been conducted to seek new two-dimensional (2D) materials with Dirac cones. Although 2D Dirac materials possess many novel properties and physics, they are rare compared with the numerous 2D materials. To provide explanation for the rarity of 2D Dirac materials as well as clues in searching for new Dirac systems, here we review the recent theoretical aspects of various 2D Dirac materials, including graphene, silicene, germanene, graphynes, several boron and carbon sheets, transition metal oxides (VO2)n/(TiO2)m and (CrO2)n/(TiO2)m, organic and organometallic crystals, so-MoS2, and artificial lattices (electron gases and ultracold atoms). Their structural and electronic properties are summarized. We also investigate how Dirac points emerge, move, and merge in these systems. The von Neumann-Wigner theorem is used to explain the scarcity of Dirac cones in 2D systems, which leads to rigorous requirements on the symmetry, parameters, Fermi level, and band overlap of materials to achieve Dirac cones. Connections between existence of Dirac cones and the structural features are also discussed.<br />Comment: Review paper, 31 pages, 10 figures

Details

Database :
arXiv
Journal :
Natl. Sci. Rev. 2 (1), 22-39 (2015)
Publication Type :
Report
Accession number :
edsarx.1410.5895
Document Type :
Working Paper
Full Text :
https://doi.org/10.1093/nsr/nwu080