2024 : 12 : 22
Bandar Astinchap

Bandar Astinchap

Academic rank: Associate Professor
ORCID:
Education: PhD.
ScopusId: 24342779500
HIndex:
Faculty: Faculty of Science
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Research

Title
Biaxial strain and magnetic field effects on electronic and optical properties of β-graphyne structure
Type
JournalPaper
Keywords
𝛽-graphyne, Transmissivity, Reflectivity, Biaxial strain.
Year
2024
Journal Physica E: Low-dimensional Systems and Nanostructure
DOI
Researchers Hamed Rezania ، Erfan Norian ، Mona Abdi ، Bandar Astinchap

Abstract

We compute electronic density of states, thermodynamic and optical conductivities of -graphyne layer under applying biaxial strains. Particularly, the imaginary part of dielectric constant, which is proportional to the electromagnetic wave absorption rate, of -graphyne due to the magnetic field and biaxial strain effects has been calculated. The temperature dependence of Pauli spin susceptibility and specific heat of the structure under applying magnetic field has been found. Tight binding model Hamiltonian has been applied for describing electron dynamics in B-graphyne layer in the presence of magnetic field. The effects of biaxial in-plane strain on the frequency behavior of the imaginary part of optical dielectric constant of B -graphyne layer. Linear response theory and Green’s function approach have been exploited to obtain the frequency behavior of optical behavior of the structure. Moreover, the frequency dependences of transmissivity and reflectivity of electromagnetic wave between two media separated by a B-graphyne layer are given. Our numerical results indicate that the frequency dependence of optical absorption shows a monotonic decreasing behavior for each compressive and tensile strain parameter. Also, the frequency dependence of transmissivity and reflectivity of electromagnetic wave between two media separated by B-graphyne layer for normal incidence has been investigated due to the effects of magnetic fields and strain parameters. The spin susceptibility ofB -graphyne layer increases with magnetic field at fixed temperature however decreasing behavior for susceptibility is found for each value of magnetic field.