English

Band Gap Engineering of Two-Dimensional Nitrogene

Materials Science 2016-10-04 v3

Abstract

In our previous study, we have predicted the novel two-dimensional honeycomb monolayers of pnictogen. In particular, the structure and properties of the honeycomb monolayer of nitrogen, which we call nitrogene, are very unusual. In this paper, we make an in-depth investigation of its electronic structure. We find that the band structure of nitrogene can be engineered in several ways: controlling the stacking of monolayers, application of biaxial tensile strain, and application of perpendicular electric field. The band gap of nitrogene is found to decrease with the increasing number of layers. The perpendicular electric field can also reduce the band gap when it is larger than 0.18V/ {\AA}, and the gap closes at 0.35V/ {\AA}. A nearly linear dependence of the gap on the electric field is found during the process. Application of biaxial strain can decrease the band gap as well, and eventually closes the gap. After the gap-closing, we find six inequivalent Dirac points in the Brillouin zone under the strain between 17% and 28%, and the nitrogene monolayer becomes a Dirac semimetal. These findings suggest that the electronic structure of nitrogene can be modified by several techniques, which makes it a promising candidate for electronic devices.

Keywords

Cite

@article{arxiv.1603.00333,
  title  = {Band Gap Engineering of Two-Dimensional Nitrogene},
  author = {Jie-Sen Li and Wei-Liang Wang and Dao-Xin Yao},
  journal= {arXiv preprint arXiv:1603.00333},
  year   = {2016}
}

Comments

19 pages, 10 figures

R2 v1 2026-06-22T13:01:06.894Z