4.7 Article

Half-metallicity in the Inverse Heusler compounds Sc2MnZ (Z = C, Si, Ge, and Sn)

Journal

INTERMETALLICS
Volume 46, Issue -, Pages 243-249

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.intermet.2013.11.021

Keywords

Magnetic intermetallics; Magnetic properties; Ab-initio calculations; Magnetic applications

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Half-metallic properties of new Heusler alloys Sc(2)MnZ (Z = C, Si, Ge, and Sn) have been studied by first-principles calculations based on the density functional theory (DFT) using the self-consistent full-potential linearized augmented plane wave (FPLAPW) method. The results showed that the Sc(2)MnZ (Z = C, Si, Ge, and Sn) compounds in AlCu2Mn-type structure and Sc2MnC in CuHg2Ti-type structure are conventional ferrimagnets. The Sc(2)MnZ (Z = Si, Ge, and Sn) compounds were half-metallic ferrimagnets in the CuHg2Ti-type structure. In the CuHg2Ti-type structure, the calculated majority spin band gaps were 0.50 eV, 0.41 eV, and 0.26 eV for Sc2MnSi, Sc2MnGe and Sc2MnSn, respectively. The obtained total magnetic moments of Sc(2)MnZ (Z = Si, Ge, and Sn) compounds in the CuHg2Ti-type structures were 1 mu B per formula unit which were in agreement with Slater-Pauling rule M-tot = 18 - Z(tot)). In addition, the reason for appearance of half-metallic band gap in the Sc2MnGe compound was also discussed. The Sc2MnSi, Sc2MnGe, and Sc2MnSn compounds in the CuHg2Ti-type structure showed half-metallic characteristics at lattice constants ranges of 6.12-6.65 angstrom, 6.07-6.63 angstrom, and 6.18-6.81 angstrom, respectively, which make them interesting materials in the spintronics field. (C) 2013 Elsevier Ltd. All rights reserved.

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