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Fizika Tverdogo Tela, 2019, Volume 61, Issue 1, Page 41
DOI: https://doi.org/10.21883/FTT.2019.01.47383.206
(Mi ftt8940)
 

This article is cited in 6 scientific papers (total in 6 papers)

Metals

Half-metallic characteristic in the new full-heusler SrYO$_{2}$ (Y = Sc, Ti, V, and Cr)

N. Nazemi, F. Ahmadian

Department of Physics, Shahreza Branch, Islamic Azad University, Shahreza, Iran
Full-text PDF (33 kB) Citations (6)
Abstract: Half-metallic properties of SrYO$_{2}$ (Y = Sc, Ti, V, and Cr) full-Hensler compounds were studied using full-potential linearized augmented plane wave method based on density functional theory. The negative formation energies of SrYO$_{2}$ (Y = Sc, Ti, V, and Cr) alloys confirmed that they can be synthesized experimentally. Total energy calculations showed that AlCu$_{2}$Mn-type structure was the ground state structure in all compounds. In both structures, SrYO$_{2}$ (Y=Ti, V, and Cr) alloys were half-metallic ferrromagnets, while SrScO$_{2}$ was a non- magnetic metal. The origin of half-metallicity was verified for SrCrO$_{2}$. SrYO$_{2}$ (Y = Ti, V, and Cr) alloys in both structures were half-metals in a wide range of lattice constants indicating that they are quite robust against hydrostatic strains. The magnetization of SrYO$_{2}$ (Y = Ti, V, and Cr) alloys was mainly originated from the 3$d$ electrons of Y( = Ti, V, and Cr) atoms and followed the Slater-Pauling rule: $M_{\operatorname{tot}}$=Z$_{\operatorname{tot}}$-12. Generally, It is expected that SrYO$_{2}$ (Y = Ti, V, and Cr) alloys are promising and interesting candidates in the future spintronic field.
Received: 10.07.2018
English version:
Physics of the Solid State, 2019, Volume 61, Issue 1, Pages 1–10
DOI: https://doi.org/10.1134/S1063783419010190
Bibliographic databases:
Document Type: Article
Language: English
Citation: N. Nazemi, F. Ahmadian, “Half-metallic characteristic in the new full-heusler SrYO$_{2}$ (Y = Sc, Ti, V, and Cr)”, Fizika Tverdogo Tela, 61:1 (2019), 41; Phys. Solid State, 61:1 (2019), 1–10
Citation in format AMSBIB
\Bibitem{NazAhm19}
\by N.~Nazemi, F.~Ahmadian
\paper Half-metallic characteristic in the new full-heusler SrYO$_{2}$ (Y = Sc, Ti, V, and Cr)
\jour Fizika Tverdogo Tela
\yr 2019
\vol 61
\issue 1
\pages 41
\mathnet{http://mi.mathnet.ru/ftt8940}
\crossref{https://doi.org/10.21883/FTT.2019.01.47383.206}
\elib{https://elibrary.ru/item.asp?id=37477644}
\transl
\jour Phys. Solid State
\yr 2019
\vol 61
\issue 1
\pages 1--10
\crossref{https://doi.org/10.1134/S1063783419010190}
Linking options:
  • https://www.mathnet.ru/eng/ftt8940
  • https://www.mathnet.ru/eng/ftt/v61/i1/p41
  • This publication is cited in the following 6 articles:
    1. Q. Yu, H. M. Huang, S. T. Xue, R. Tong, S. J. Luo, “Structural Configuration and Phase Stability in Heusler Alloys Mn2YSb (Y = Os, Pt)”, Phys. Metals Metallogr., 123:13 (2022), 1335  crossref
    2. Jun-Rui Liu, Xiao-Ping Wei, Wen-Li Chang, Xiaoma Tao, “Structural stability, electronic, magnetic and thermoelectric properties for half-metallic quaternary Heusler alloys CrLaCoZ”, Journal of Physics and Chemistry of Solids, 163 (2022), 110600  crossref
    3. H.-J. Zhou, H.-M. Huang, S.-J. Luo, “First-principles study of the physical properties of the new quaternary Heusler alloy CoMnVZ ($Z$ = Sn and Sb)”, Phys. Solid State, 63:2 (2021), 272–278  mathnet  mathnet  crossref
    4. Gh. Forozani, F. Karami, M. Moradi, “Structural, Electronic, Magnetic, and Optical Properties of Ir2ScZ (Z = Si, Ge, Sn) Full-Heusler Compounds: A First-Principles Study”, Journal of Elec Materi, 49:10 (2020), 5947  crossref
    5. M. Ram, A. Saxena, N. Limbu, H. Joshi, A. Shankar, “Mechanical stability and origin of half-metallicity of new M2NiZ (M = Sc, Ti, and V; Z = Tl and Pb) Heusler alloys”, Journal of Applied Physics, 128:5 (2020)  crossref
    6. Zongbin Chen, Heju Xu, Yongchun Gao, Xiaotian Wang, Tie Yang, “Site-Preference, Electronic, Magnetic, and Half-Metal Properties of Full-Heusler Sc2VGe and a Discussion on the Uniform Strain and Tetragonal Deformation Effects”, Crystals, 9:9 (2019), 445  crossref
    Citing articles in Google Scholar: Russian citations, English citations
    Related articles in Google Scholar: Russian articles, English articles
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