Electronic Structure of the Non-Stoichiometric L21-Type Mn1.75Co1.25Al Heusler Alloy

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Abstract:

Theoretical ab initio calculations of the electronic structure were performed for the non-stoichiometric Mn1.75Co1.25Al Heusler alloy and compared with the electronic structure of the stoichiometric Mn2CoAl full Heusler alloy. Both compounds are assumed to have the L21-type crystal structure in the calculations, the non-stoichiometry is taken into account as a substitution of a Mn atom in a supercell. The calculation for the non-stoichiometric composition of Mn1.75Co1.25Al showed that taking non-stoichiometry into account leads to a decrease of the total magnetic moment. In comparison with the inverse type of Mn2CoAl, in both Mn2CoAl and Mn1.75Co1.25Al, the metallic type of the total density of states at the Fermi level was obtained in our calculations. In Mn1.75Co1.25Al, the total density of electronic states is found to be close to the one of the stoichiometric Mn2CoAl alloy in the majority spin projection, and in the minority spin projection spin polarization leads to the formation of the more intense peaks due to the appearance of an additional non-stoichiometric cobalt with a significant magnetic moment, as well as an increase in the magnetic moments of the other magnetic ions.

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Materials Science Forum (Volume 1093)

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21-26

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July 2023

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© 2023 Trans Tech Publications Ltd. All Rights Reserved

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[1] S. Ouardi, G.H. Fecher, C. Felser, J. Kubler, Realization of Spin Gapless Semiconductors: The Heusler Compound Mn2CoAl, Phys. Rev. Lett. 110 (2013) 100401.

DOI: 10.1103/physrevlett.122.059901

Google Scholar

[2] Y. Xin, H. Hao, Y. Ma, H. Luo, G. Wu, Competition of XA and L21B ordering in Heusler alloys Mn2CoZ (Z = Al, Ga, Si, Ge and Sb) and its influence on electronic structure, Intermetallics 80 (2017) 10-15.

DOI: 10.1016/j.intermet.2016.10.001

Google Scholar

[3] M.G. Kostenko, A.V. Lukoyanov, Magnetic properties and electronic structure of Mn-Al alloys in the β-Mn structure, J. Magn. Magn. Mater. 542 (2022) 168600.

DOI: 10.1016/j.jmmm.2021.168600

Google Scholar

[4] A.V. Sokolov, Optical Properties of Metals, Blackie and Son, London, 1965.

Google Scholar

[5] A.O. Shorikov, A.V. Lukoyanov, M.A. Korotin, V.I. Anisimov, Magnetic state and electronic structure of the delta and alpha phases of metallic Pu and its compounds, Phys. Rev. B 72 (2005) 24458.

DOI: 10.1103/physrevb.72.024458

Google Scholar

[6] N.I. Kourov, A.V. Korolev, V.V. Marchenkov, A.V. Lukoyanov, K.A. Belozerova, Magnetic and electrical properties of the half-metallic ferromagnets Co2CrAl, Phys. Solid State 55 (2013) 977-985.

DOI: 10.1134/s1063783413050181

Google Scholar

[7] S. Ouardi, G.H. Fecher, T. Kubota, S. Mizukami, E. Ikenaga, T. Nakamura, C. Felser, Magnetic dichroism study on Mn1.8Co1.2Ga thin film using a combination of x-ray absorption and photoemission spectroscopy, J. Phys. D: Appl. Phys. 48 (2015) 164007.

DOI: 10.1088/0022-3727/48/16/164007

Google Scholar

[8] E.I. Shreder, A.A. Makhnev, A.V. Lukoyanov, V.V. Marchenkov, Electron structure and optical properties of the Mn1.8Co1.2Al alloy and spin gapless semiconductor state, Phys. Met. Metallogr. 119 (2018) 1068-1072.

DOI: 10.1134/s0031918x18110194

Google Scholar

[9] R.G. Buckley, T. Butler, C. Pot, N.M. Strickland, S. Granville, Exploring disorder in the spin gapless semiconductor Mn2CoAl, Mater. Res. Express 6 (2019) 106113.

DOI: 10.1088/2053-1591/ab3bd3

Google Scholar