English

Interlayer quantum transport in Dirac semimetal BaGa$_2$

Materials Science 2020-05-20 v1 Mesoscale and Nanoscale Physics

Abstract

Quantum limit is quite easy to achieve once the band crossing exists exactly at the Fermi level (EFE_F) in topological semimetals. In multilayered Dirac fermion system, the density of Dirac fermions on the zeroth Landau levels (LLs) increases in proportion to the magnetic field, resulting in intriguing angle- and field-dependent interlayer tunneling conductivity near the quantum limit. BaGa2_2 is an example of multilayered Dirac semimetal with anisotropic Dirac cone close to EFE_F, providing a good platform to study its interlayer transport properties. In this paper, we report the negative interlayer magnetoresistance (NIMR, I//c and B//c) induced by the tunneling of Dirac fermions on the zeroth LLs of neighbouring Ga layers in BaGa2_2. When the field deviates from the c-axis, the interlayer resistivity ρzz(θ)\rho_{zz}(\theta) increases and finally results in a peak with the field perpendicular to the c-axis. These unusual interlayer transport properties (NIMR and resistivity peak with B\perpc) are observed together for the first time in Dirac semimetal under ambient pressure and are well explained by the model of tunneling between Dirac fermions in the quantum limit.

Keywords

Cite

@article{arxiv.1907.10702,
  title  = {Interlayer quantum transport in Dirac semimetal BaGa$_2$},
  author = {Sheng Xu and Changhua Bao and Yi-Yan Wang and Peng-Jie Guo and Qiao-He Yu and Lin-Lin Sun and Yuan Su and Kai Liu and Zhong-Yi Lu and Shuyun Zhou and Tian-Long Xia},
  journal= {arXiv preprint arXiv:1907.10702},
  year   = {2020}
}

Comments

12 pages, 8 figures, with supplementary materials

R2 v1 2026-06-23T10:29:57.396Z