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Optical and magnetic properties of some XMnSb and Co 2 YZ Compounds: ab initio calculations
Author(s) -
Palaz Selami,
Koc Husnu,
Ozisik Haci,
Deligoz Engin,
Mamedov Amirullah M.,
Ozbay Ekmel
Publication year - 2017
Publication title -
physica status solidi c
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.21
H-Index - 46
eISSN - 1610-1642
pISSN - 1862-6351
DOI - 10.1002/pssc.201600182
Subject(s) - condensed matter physics , lattice constant , ab initio , magnetic moment , band gap , fermi level , electronic band structure , ab initio quantum chemistry methods , density functional theory , dielectric , spin (aerodynamics) , materials science , electron , physics , chemistry , computational chemistry , quantum mechanics , molecule , thermodynamics , optoelectronics , diffraction
In present work, our research is mainly focused on the electronic structures, optical, and magnetic properties of XMnSb (X = Ni, Cu, Pd), Co 2 YZ (Y = Ti; Z=Si, Ge, Sn), and Co 2 YZ (Y =Mn; Z=Al, Ga, Si) Heusler compounds by using ab initio calculations within the generalized gradient approximation. The calculations are performed by using the Vienna ab initio simulation package based on the density functional theory. The band structure of these Heusler alloys for majority spin and minority spin were calculated and the majority spin states cross the Fermi level and thus have the metallic character, while the minority spin states open the band gaps around the Fermi level and thus have the narrow‐band semiconducting nature. We also find that these Heusler compounds have the indirect band gaps in the minority spin channel. The real and imaginary parts of dielectric functions and hence the optical functions such as energy‐loss function, the effective number of valance electrons and the effective optical dielectric constant for XMnSb and Co 2 YZ compounds were also calculated. In addition, we also show the variations of the total magnetic moment per f.u. and minority spin gap width of these compounds with optimized lattice constants: minority spin gap width decreases with increasing the lattice constants.

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