English

Electrostatic Screening Modulation of Graphene's Electronic Structure and the Helical Wavefunction Dominated Topological Properties

Mesoscale and Nanoscale Physics 2026-02-12 v2 Materials Science

Abstract

This study examines electrostatic screening effects in graphene using tight binding calculations based on the Binding energy and Bond Charge model and a modified version of it. The results indicate that the modified BBC potential decays in an exponential manner with distance, which suppresses electron electron interactions. The hopping integrals exhibit a pronounced decrease over distance and shift with parameter variation. A band gap opens once the parameter exceeds a certain threshold. The density of states shows a prominent peak near the Fermi level, whereas the low-energy region remains largely unchanged. The low energy helical wave functions in graphene display topological characteristics, including pseudospin momentum locking and a {\pi} Berry phase, resulting in distinctive transport properties. By avoiding the Coulomb singularity, the model offers valuable insights for the engineering of screening in two-dimensional systems and the design of topological devices.

Keywords

Cite

@article{arxiv.2601.18489,
  title  = {Electrostatic Screening Modulation of Graphene's Electronic Structure and the Helical Wavefunction Dominated Topological Properties},
  author = {Yaorui Tan and Xiang Chen and Yunhu Zhu and Xiaowu Yang and Zhongkai Huang and Chuang Yao and Maolin Bo},
  journal= {arXiv preprint arXiv:2601.18489},
  year   = {2026}
}
R2 v1 2026-07-01T09:20:26.489Z