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Dirac states from p_(x,y)orbitals in the buckled honeycomb structures:A tight-binding model and first-principles combined study

Dirac states from p_(x,y) orbitals in the buckled honeycomb structures:A tight-binding model and first-principles combined study
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摘要 Dirac states composed of Px,y orbitals have been reported in many two-dimensional (2D) systems with honeycomb lattices recently. Their potential importance has aroused strong interest in a comprehensive understanding of such states. Here, we construct a four-band tight-binding model for the Px,y-orbital Dirac states considering both the nearest neighbor hopping interactions and the lattice-buckling effect. We find that Px,y-orbital Dirac states are accompanied with two addi- tional narrow bands that are flat in the limit of vanishing n bonding, which is in agreement with previous studies. Most importantly, we analytically obtain the linear dispersion relationship between energy and momentum vector near the Dirac cone. We find that the Fermi velocity is determined not only by the hopping through n bonding but also by the hopping through ~ bonding of Px,y orbitals, which is in contrast to the case of pz-orbital Dirac states. Consequently, Px,y-orbital Dirac states offer more flexible engineering, with the Fermi velocity being more sensitive to the changes of lattice constants and buckling angles, if strain is exerted. We further validate our tight-binding scheme by direct first-principles calcula- tions of model-materials including hydrogenated monolayer Bi and Sb honeycomb lattices. Our work provides a more in-depth understanding of Px,y-orbital Dirac states in honeycomb lattices, which is useful for the applications of this family of materials in nanoelectronics. Dirac states composed of Px,y orbitals have been reported in many two-dimensional (2D) systems with honeycomb lattices recently. Their potential importance has aroused strong interest in a comprehensive understanding of such states. Here, we construct a four-band tight-binding model for the Px,y-orbital Dirac states considering both the nearest neighbor hopping interactions and the lattice-buckling effect. We find that Px,y-orbital Dirac states are accompanied with two addi- tional narrow bands that are flat in the limit of vanishing n bonding, which is in agreement with previous studies. Most importantly, we analytically obtain the linear dispersion relationship between energy and momentum vector near the Dirac cone. We find that the Fermi velocity is determined not only by the hopping through n bonding but also by the hopping through ~ bonding of Px,y orbitals, which is in contrast to the case of pz-orbital Dirac states. Consequently, Px,y-orbital Dirac states offer more flexible engineering, with the Fermi velocity being more sensitive to the changes of lattice constants and buckling angles, if strain is exerted. We further validate our tight-binding scheme by direct first-principles calcula- tions of model-materials including hydrogenated monolayer Bi and Sb honeycomb lattices. Our work provides a more in-depth understanding of Px,y-orbital Dirac states in honeycomb lattices, which is useful for the applications of this family of materials in nanoelectronics.
作者 Shi-Ru Song Ji-Hui Yang Shi-Xuan Du Hong-Jun Gao Boris I Yakobson 宋士儒;杨吉辉;杜世萱;高鸿钧;Boris I Yakobson(Institute of Physics,Chinese Academy of Sciences,Beijing 1 O0190,China;School of Physical Sciences,University of Chinese Academy of Sciences,Beijing 1 O0190,China;Department of Materials Science and Nanoengineering,Rice University,Houston,Texas 77005,USA)
出处 《Chinese Physics B》 SCIE EI CAS CSCD 2018年第8期460-465,共6页 中国物理B(英文版)
基金 Project supported by the National Key Research and Development Projects of China(Grant No.2016YFA0202300) the National Natural Science Foundation of China(Grant No.61390501) the Science Fund from the Chinese Academy of Sciences(Grant No.XDPB0601) the US Army Research Office
关键词 TIGHT-BINDING density functional theory px y-orbitals buckled honeycomb structures tight-binding density functional theory px,y-orbitals buckled honeycomb structures
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