4.7 Article

The impact of disorder on the 4O-martensite of Ni-Mn-Sn Heusler alloy

期刊

INTERMETALLICS
卷 151, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.intermet.2022.107708

关键词

Ni-Mn-Sn; martensite; modulation; magnetism; ab initio; phonons; elasticity PACS; 63.50.+x; 75.50.Gg; 64.30.Ef; 62.20.Dc

资金

  1. Czech Science Foundation [20-16130S]
  2. Operational Program Research, Development and Education - European Structural and Investment Funds
  3. European Structural and Investment Funds
  4. Czech Ministry of Education, Youth and Sports (MEYS CR) [MATFUN CZ.02.1.01/0.0/0.0/15_003/0000487]

向作者/读者索取更多资源

In this study, a quantum-mechanical investigation was conducted on the thermodynamic, elastic, magnetic, and structural properties of four different ferrimagnetic states in Ni1.9375Mn1.5625Sn0.5 martensite. The results revealed that the Mn atoms in the Ni sublattice play a crucial role in determining both the thermodynamic and magnetic properties of the system. Additionally, the mechanically stable lowest-energy configuration exhibited anti-parallel local magnetic moments of the Mn atoms in relation to the total magnetic moment. The vibrational properties of individual atoms were found to be highly sensitive to chemical disorder.
We have performed a quantum-mechanical study of thermodynamic, elastic, magnetic and structural properties of four different ferrimagnetic states in Ni1.9375Mn1.5625Sn0.5 martensite. They are modeled by the four-layer modulated 4O structures with Mn-excess atoms randomly distributed in Ni and Sn sublattices. The Mn atoms at the Ni sublattice turn out to be decisive for both thermodynamic and magnetic properties. A reversal of the orientation of their local magnetic moments has a huge impact on the properties of the whole system. The lowest-energy configuration exhibits anti-parallel local magnetic moments of these Mn atoms with respect to the orientation of the total magnetic moment. By testing both elastic properties and phonon modes we conclude that the lowest-energy state is mechanically stable. Vibrational properties of individual atoms are found to be very sensitive to the chemical disorder.

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