English

Gas adsorption effects on electronic and magnetic properties of triangular graphene antidot lattices

Mesoscale and Nanoscale Physics 2020-07-23 v1

Abstract

The adsorption effects of small molecules (H2_{2}O, CO, NH3_{3}, NO2_{2}) and large molecules (Tetracyanoquinodimethane (TCNQ) and Tetrafluoro-tetracyanoquinodimethane (F4TCNQ)) on electronic and magnetic properties of two triangular graphene antidot lattices (GALs), [10,3,6]RTA[10,3,6]_{RTA} and [10,5]ETA[10, 5]_{ETA}, are investigated by means of first-principles calculations. We find that CO, NO2_{2}, TCNQ, and F4TCNQ molecules are chemisorbed by both antidots, whereas NH3_{3} is physisorbed (chemisorbed) by [10,5]ETA[10, 5]_{ETA} ([10,3,6]RTA[10,3,6]_{RTA}) structure. H2_{2}O, CO, NH3_{3} molecules reveal no significant effect on electronic and magnetic properties of these antidot structures. The adsorbed NO2_{2} molecules affect the energy gap of GALs by changing their electronic structure from semiconducting to half-metal nature. This suggests that both GALs can act as efficient NO2_{2} sensors. The adsorption of TCNQ and F4TCNQ molecules on GALs induces flat bands in the vicinity of the Fermi energy and also turn the electronic structure of antidot lattices to half-metallicity. Among the small and large molecules, NO2_{2} molecules induce the most total magnetic moment, paving the way to make magnetic GAL-based devices.

Keywords

Cite

@article{arxiv.2007.11253,
  title  = {Gas adsorption effects on electronic and magnetic properties of triangular graphene antidot lattices},
  author = {Zahra Talebi Esfahani and Alireza Saffarzadeh and Ahmad Akhound and Amir Abbas Sabouri Dodaran},
  journal= {arXiv preprint arXiv:2007.11253},
  year   = {2020}
}

Comments

8 pages, 6 figures