Landau quantization in monolayer GaAs

POSTER

Abstract

In the past decade, the discovery of graphene has opened the possibility of two-dimensional materials both in fundamental researches and technological applications. However, the gapless feature shrinks the applications of pristine graphene. Recently, researchers have new challenges and opportunities for post-graphene two-dimensional nanomaterials, such as silicene (Si), germanene (Ge), and tinene (Sn), due to the large enough energy gap (of the size comparable to the thermal energy at room temperature). Apart from the graphene analogs of group IV elements, the buckled honeycomb lattices of the binary compositions of group III-V elements have been proposed as a new class of post-graphene two-dimensional nanomaterials. In this study, the generalized tight-binding model considering the spin-orbital coupling is used to investigate the essential properties of monolayer GaAs. The Landau quantization, band structure, wave function, and density of states are discussed in detail.

Authors

  • Hsien-Ching Chung

    National Kaohsiung Normal University

  • Ching-Hong Ho

    Tainan University of Technology

  • Cheng-Peng Chang

    Tainan University of Technology

  • Chun-Nan Chen

    Tamkang University

  • Chih-Wei Chiu

    Department of Physics National Kaohsiung Normal University, National Kaohsiung Normal University

  • Ming-Fa Lin

    National Cheng Kung University, Natl Cheng Kung Univ