Theory of spin-orbit coupling in bilayer graphene

被引:104
|
作者
Konschuh, S. [1 ]
Gmitra, M. [1 ]
Kochan, D. [1 ]
Fabian, J. [1 ]
机构
[1] Univ Regensburg, Inst Theoret Phys, D-93040 Regensburg, Germany
来源
PHYSICAL REVIEW B | 2012年 / 85卷 / 11期
关键词
GRAPHITE; SPINTRONICS; CARBON; STATE;
D O I
10.1103/PhysRevB.85.115423
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A theory of spin-orbit coupling in bilayer graphene is presented. The electronic band structure of the AB bilayer in the presence of spin-orbit coupling and a transverse electric field is calculated from first principles using the linearized augmented plane-wave method implemented in the WIEN2K code. The first-principles results around the K points are fitted to a tight-binding model. The main conclusion is that the spin-orbit effects in bilayer graphene derive essentially from the single-layer spin-orbit coupling which comes almost solely from the d orbitals. The intrinsic spin-orbit splitting (anticrossing) around the K points is about 24 mu eV for the low-energy valence and conduction bands, which are closest to the Fermi level, similarly as in the single-layer graphene. An applied transverse electric field breaks space inversion symmetry and leads to an extrinsic (also called Bychkov-Rashba) spin-orbit splitting. This splitting is usually linearly proportional to the electric field. The peculiarity of graphene bilayer is that the low-energy bands remain split by 24 mu eV independently of the applied external field. The electric field, instead, opens a semiconducting band gap separating these low-energy bands. The remaining two high-energy bands are spin split in proportion to the electric field; the proportionality coefficient is given by the second intrinsic spin-orbit coupling, whose value is 20 mu eV. All the band-structure effects and their spin splittings can be explained by our tight-binding model, in which the spin-orbit Hamiltonian is derived from symmetry considerations. The magnitudes of intra- and interlayer couplings-their values are similar to the single-layer graphene ones-are determined by fitting to first-principles results.
引用
收藏
页数:14
相关论文
共 50 条
  • [41] Tailoring topological band properties of twisted double bilayer graphene: Effects due to spin-orbit coupling
    Bera, Kamalesh
    Mohan, Priyanka
    Saha, Arijit
    PHYSICAL REVIEW B, 2025, 111 (04)
  • [42] Spin-Orbit Coupling and the Optical Spin Hall Effect in Photonic Graphene
    Nalitov, A. V.
    Malpuech, G.
    Tercas, H.
    Solnyshkov, D. D.
    PHYSICAL REVIEW LETTERS, 2015, 114 (02)
  • [43] Double trigonal warping and the anomalous quantum Hall step in bilayer graphene with Rashba spin-orbit coupling
    Wang, Bo
    Zhang, C.
    Ma, Zhongshui
    JOURNAL OF PHYSICS-CONDENSED MATTER, 2012, 24 (48)
  • [44] Layered opposite Rashba spin-orbit coupling in bilayer graphene: Loss of spin chirality, symmetry breaking, and topological transition
    Zhai, Xuechao
    PHYSICAL REVIEW B, 2022, 105 (20)
  • [45] Thermal spin-orbit torque with Dresselhaus spin-orbit coupling
    Xue, Chun-Yi
    Wang, Ya-Ru
    Wang, Zheng-Chuan
    EUROPEAN PHYSICAL JOURNAL B, 2024, 97 (02):
  • [46] Study of edge states and conductivity in spin-orbit coupled bilayer graphene
    Sinha, Priyanka
    Basu, Saurabh
    EUROPEAN PHYSICAL JOURNAL B, 2019, 92 (09):
  • [47] Study of edge states and conductivity in spin-orbit coupled bilayer graphene
    Priyanka Sinha
    Saurabh Basu
    The European Physical Journal B, 2019, 92
  • [48] Scattering theory of spin-orbit active adatoms on graphene
    Pachoud, Alexandre
    Ferreira, Aires
    Oezyilmaz, B.
    Neto, A. H. Castro
    PHYSICAL REVIEW B, 2014, 90 (03)
  • [49] Energy spectrum and Landau levels in bilayer graphene with spin-orbit interaction
    Mireles, Francisco
    Schliemann, John
    NEW JOURNAL OF PHYSICS, 2012, 14
  • [50] Spin-orbit proximity in MoS2/bilayer graphene heterostructures
    Masseroni, Michele
    Gull, Mario
    Panigrahi, Archisman
    Jacobsen, Nils
    Fischer, Felix
    Tong, Chuyao
    Gerber, Jonas D.
    Niese, Markus
    Taniguchi, Takashi
    Watanabe, Kenji
    Levitov, Leonid
    Ihn, Thomas
    Ensslin, Klaus
    Duprez, Hadrien
    NATURE COMMUNICATIONS, 2024, 15 (01)