Half-Metal Ferromagnetism V-Doped GaN Nanosheet Application in Spintronic Device

Authors

  • N.A. Ismayilova Institute of Physics, Ministry of Science and Education, Western Caspian University
  • S.H. Jabarov Institute of Physics, Ministry of Science and Education
  • J.A. Guliyev Institute of Physics, Ministry of Science and Education

DOI:

https://doi.org/10.15407/ujpe69.10.754

Keywords:

DFT, approximation, magnetic moment, nanoribbon

Abstract

The density functional theory calculations using general gradient approximation (GGA) have been systematically performed to study the electronic structures, the density of states (DOS), and magnetic properties of V-doped GaN nanosheet for different dopant concentrations (2.08% and 4.16%). We conducted the entire study using the Atomistixtool kit code. The electronic properties were improved with the Hubbard values U = 4 eV. V-doped CaN nanosheet exhibits stable ferromagnetic (FM) states relative to corresponding antiferromagnetic (AFM) states. The calculated TC with the V-doping is found to be above the room temperature (RT) one. Calculation results reveal that V-doped nanosheets may be a good candidates for spintronics due to its good half-metal ferromagnetism.

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Published

2024-10-29

How to Cite

Ismayilova, N., Jabarov, S., & Guliyev, J. (2024). Half-Metal Ferromagnetism V-Doped GaN Nanosheet Application in Spintronic Device. Ukrainian Journal of Physics, 69(10), 754. https://doi.org/10.15407/ujpe69.10.754

Issue

Section

Semiconductors and dielectrics