TY - JOUR
T1 - Strain effect on the electronic properties of single layer and bilayer graphene
AU - Wong, Jen Hsien
AU - Wu, Bi Ru
AU - Lin, Ming Fa
PY - 2012/4/12
Y1 - 2012/4/12
N2 - This paper investigates strain effects on the electronic properties of single-layer and bilayer graphene using a first-principles method. The deformation significantly alters energy dispersion, band overlap, band gap, and the band edges of graphenes. Fermi velocity behaves both linearly and nonlinearly with the strains, depending on the types of deformation and the direction of the Fermi velocity. In bilayer graphene, the uniaxial strain enhances the band overlap by 2 orders of magnitude. A semimetal-insulator transition occurs when bilayer graphene is under a compressive uniaxial strain along the zigzag chain direction. These strain-dependent results are useful for acquiring the intralayer and interlayer atomic relations or Slonczewski-Weiss- McClure parameters. The intralayer coupling γ 0 under the H-strain and interlayer couplings γ 1, γ 3, and γ 4 under the P-strain decrease dramatically as the strain increases. Nevertheless, interlayer couplings vary more slowly with the H-strain than the P-strain.
AB - This paper investigates strain effects on the electronic properties of single-layer and bilayer graphene using a first-principles method. The deformation significantly alters energy dispersion, band overlap, band gap, and the band edges of graphenes. Fermi velocity behaves both linearly and nonlinearly with the strains, depending on the types of deformation and the direction of the Fermi velocity. In bilayer graphene, the uniaxial strain enhances the band overlap by 2 orders of magnitude. A semimetal-insulator transition occurs when bilayer graphene is under a compressive uniaxial strain along the zigzag chain direction. These strain-dependent results are useful for acquiring the intralayer and interlayer atomic relations or Slonczewski-Weiss- McClure parameters. The intralayer coupling γ 0 under the H-strain and interlayer couplings γ 1, γ 3, and γ 4 under the P-strain decrease dramatically as the strain increases. Nevertheless, interlayer couplings vary more slowly with the H-strain than the P-strain.
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U2 - 10.1021/jp300840k
DO - 10.1021/jp300840k
M3 - Article
AN - SCOPUS:84859770252
SN - 1932-7447
VL - 116
SP - 8271
EP - 8277
JO - Journal of Physical Chemistry C
JF - Journal of Physical Chemistry C
IS - 14
ER -