4.6 Article

Transition from parabolic to ring-shaped valence band maximum in few-layer GaS, GaSe, and InSe

Journal

PHYSICAL REVIEW B
Volume 90, Issue 23, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.90.235302

Keywords

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Funding

  1. RFBR [14-32-50852]
  2. RAS research programs
  3. [SP-7452.2013.5]

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By performing first-principles electronic structure calculations in frames of density functional theory we study the dependence of the valence band shape on the thickness of few-layer III-VI crystals (GaS, GaSe, and InSe). We estimate the critical thickness of transition from the bulklike parabolic to the ring-shaped valence band. Direct supercell calculations show that the ring-shaped extremum of the valence band appears in beta-GaS and beta-GaSe at a thickness below 6 tetralayers (similar to 4.6 nm) and 8 tetralayers (similar to 6.4 nm), respectively. Zone-folding calculations estimate the beta-InSe critical thickness to be equal to 28 tetralayers (similar to 24.0 nm). The origin of the ring-shaped valence band maximum can be understood in terms of k.p theory, which provides a link between the curvature of the energy bands and the distance between them. We explain the dependence of the band shape on the thickness, as well as the transition between two types of extremes, by the k-dependent orbital composition of the topmost valence band. We show that in the vicinity of critical thickness the effective mass of holes in III-VI compounds depends strongly on the number of tetralayers.

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