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<i>Ab-Initio</i> Computations of Electronic and Related Properties of cubic Magnesium Silicide (Mg<sub>2</sub>Si)

POSTER

Abstract

We have performed ab-initio, self-consistent calculations of electronic, transport, and bulk properties of cubic magnesium silicide (Mg2Si). Our computations employed the local density approximation (LDA) potential of Ceperley and Alder and the linear combination of atomic orbital (LCAO) formalism. We performed a generalized minimization of the energy using successive, self-consistent calculations with augmented basis sets to reach the ground state of the material, y, without employing over-complete basis sets. For a room temperature lattice constant of 6.338 Å, our calculated, indirect band gap, from Γ to X, is 0.867 eV. We discuss the total and partial densities of states, electron and hole effective masses, and the bulk modulus. Our calculated bulk modulus of 55.96 GPa is in excellent agreement with experimental value (55 GPa). Our predicted equilibrium lattice constant and band gap, at zero temperature, are 6.2056Å and 0.947 eV.

Presenters

  • Yuriy Malozovsky

    Mathematics and Physics, Southern University and A&M College, Physics and Mathematics, Southern University and A&M College

Authors

  • Dioum Alle

    Department of Physics, Cheick Anta Diop University (UCAD), Dakar, Senegal

  • Blaise Awola Ayirizia

    Mathematics and Physics, Southern University and A&M College, Physics and Mathematics, Southern University and A&M College

  • Yuriy Malozovsky

    Mathematics and Physics, Southern University and A&M College, Physics and Mathematics, Southern University and A&M College

  • Aboubaker Chedikh Beye

    Department of Physics, Cheick Anta Diop University (UCAD), Dakar, Senegal

  • Diola Bagayoko

    Mathematics and Physics, Southern University and A&M College, Physics and Mathematics, Southern University and A&M College