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Feature-Rich Magnetic Quantization in Sliding Bilayer Graphenes

Materials Science 2016-11-18 v1 Mesoscale and Nanoscale Physics

Abstract

The generalized tight-binding model, based on the subenvelope functions of distinct sublattices, is developed to investigate the magnetic quantization in sliding bilayer graphenes. The relative shift of two graphene layers induces a dramatic transformation between the Dirac-cone structure and the parabolic band structure, and thus leads to drastic changes of Landau levels (LLs) in the spatial symmetry, initial formation energy, intergroup anti-crossing, state degeneracy and semiconductor-metal transition. There exist three kinds of LLs, i.e., well-behaved, perturbed and undefined LLs, which are characterized by a specific mode, a main mode plus side modes, and a disordered mode, respectively. Such LLs are clearly revealed in diverse magneto-optical selection rules. Specially, the undefined LLs frequently exhibit intergroup anti-crossings in the field-dependent energy spectra, and show a large number of absorption peaks without optical selection rules.

Keywords

Cite

@article{arxiv.1408.3827,
  title  = {Feature-Rich Magnetic Quantization in Sliding Bilayer Graphenes},
  author = {Yao-Kung Huang and Szu-Chao Chen and Yen-Hung Ho and Chiun-Yan Lin and Ming-Fa Lin},
  journal= {arXiv preprint arXiv:1408.3827},
  year   = {2016}
}

Comments

submitted to Scientific Reports 17 pages, 7 fiures

R2 v1 2026-06-22T05:31:19.800Z