Carbon Hybridization to Tight-Binding to Dirac Solid The Wonder Laboratory of Graphene

被引:8
|
作者
Dattagupta, Sushanta [1 ]
机构
[1] Indian Natl Sci Acad, Bangalore, Karnataka, India
来源
关键词
Graphene; hybrid orbitals; tight-binding; pseudo-spin; massless fermions; Dirac theory;
D O I
10.1007/s12045-020-0939-5
中图分类号
G40 [教育学];
学科分类号
040101 ; 120403 ;
摘要
We make a pedagogical survey on why the charge carriers (electrons) in graphene are called massless Dirac fermions. Our analysis begins at the beginning, namely, we start from the quantum chemistry of two nearby carbon (C) atoms and show how their hybridized orbitals 'valence-bond' with each other to form an energy-band in the solid-state. This yields a two-dimensional honeycomb lattice of graphene, which can be viewed as two inter-penetrating triangular sublattices. That recognition provides a perfect setting for describing the dynamics of the last weakly-localized valence electron of C in a tight-binding model, which captures all the unusual electronic phenomena of graphene. The latter emerges from a resemblance to the relativistic Dirac theory of electrons because, in the long-wavelength limit, the energy dispersion is linear in the wave vector. We build up - step by step - this remarkable transition of a carbon-based material to an exotic two-dimensional Dirac solid, in which much of the quantum aspects of modern condensed matte physics can be tested in the laboratory.
引用
收藏
页码:249 / 268
页数:20
相关论文
共 50 条
  • [21] Tight-binding approach to penta-graphene
    Stauber, T.
    Beltran, J. I.
    Schliemann, J.
    SCIENTIFIC REPORTS, 2016, 6
  • [22] Tight-binding study of hydrogen adsorption on palladium decorated graphene and carbon nanotubes
    Lopez-Corral, I.
    German, E.
    Volpe, M. A.
    Brizuela, G. P.
    Juan, A.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (06) : 2377 - 2384
  • [23] Tight-binding description of graphene–BCN–graphene layered semiconductors
    Mahsa Ebrahimi
    Ashkan Horri
    Majid Sanaeepur
    Mohammad Bagher Tavakoli
    Journal of Computational Electronics, 2020, 19 : 62 - 69
  • [24] A tight-binding potential for helium in carbon systems
    Granot, Rebecca
    Baer, Roi
    JOURNAL OF CHEMICAL PHYSICS, 2008, 129 (21):
  • [25] Accurate tight-binding models for the π bands of bilayer graphene
    Jung, Jeil
    MacDonald, Allan H.
    PHYSICAL REVIEW B, 2014, 89 (03):
  • [26] Scattering by linear defects in graphene: a tight-binding approach
    Rodrigues, J. N. B.
    Peres, N. M. R.
    Lopes dos Santos, J. M. B.
    JOURNAL OF PHYSICS-CONDENSED MATTER, 2013, 25 (07)
  • [27] Polynomial Fitting of Tight-Binding Method in Carbon
    Haa, Wai Kang
    Yeak, Su Hoe
    4TH INTERNATIONAL CONFERENCE ON MATHEMATICAL SCIENCES (ICMS4): MATHEMATICAL SCIENCES: CHAMPIONING THE WAY IN A PROBLEM BASED AND DATA DRIVEN SOCIETY, 2017, 1830
  • [28] Electron localizability and polarizability in tight-binding graphene nanostructures
    Evangelisti, Stefano
    Bendazzoli, Gian Luigi
    Monari, Antonio
    THEORETICAL CHEMISTRY ACCOUNTS, 2010, 126 (3-4) : 257 - 263
  • [29] Energy gap of strained graphene with tight-binding model
    Yang, C.
    Shaofeng, W.
    Hong, X.
    EUROPEAN PHYSICAL JOURNAL-APPLIED PHYSICS, 2010, 52 (02):
  • [30] Electron localizability and polarizability in tight-binding graphene nanostructures
    Stefano Evangelisti
    Gian Luigi Bendazzoli
    Antonio Monari
    Theoretical Chemistry Accounts, 2010, 126 : 257 - 263