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Crystal structure, magnetic and electrical transport properties of titanium-doped half-Heusler alloys Ni1−xTixMnSb

A. V. RutkauskasFrank Laboratory of Neutron Physics, Joint Institute for Nuclear Research, 141980 Dubna, RussiaС. Е. КичановFrank Laboratory of Neutron Physics, Joint Institute for Nuclear Research, 141980 Dubna, RussiaT. N. VershininaFrank Laboratory of Neutron Physics, Joint Institute for Nuclear Research, 141980 Dubna, RussiaG. S. RymskiScientific-Practical Materials Research Center of the National Academy of Sciences of Belarus, 220072, Minsk, BelarusN. T. DangFaculty of Natural Sciences, Duy Tan University, 550000 Danang, VietnamT. P. HoangFaculty of Natural Sciences, Duy Tan University, 550000 Danang, VietnamTuan Anh TranHo Chi Minh City University of Technology and Education, 700000 Ho Chi Minh, VietnamNgoc‐Loan PhanComputational Physics Key Laboratory K002, Department of Physics, Ho Chi Minh City University of Education, 72711 Ho Chi Minh City, VietnamD. P. T. TienNhatrang Institute of Technology Research and Application, Vietnam Academy of Science and Technology, Hanoi 100000, VietnamP. D. ThinhNhatrang Institute of Technology Research and Application, Vietnam Academy of Science and Technology, Hanoi 100000, VietnamDinh Thanh KhanThe University of Danang - University of Science and Education, 550000 Danang, Vietnam
2024en
ABI

Аннотация

[Formula: see text]Ti x MnSb polycrystalline alloys in the range [Formula: see text] were synthesized employing the standard solid-phase synthesis method. The crystal, magnetic, as well as electrical properties of the alloys were investigated using neutron powder diffraction and magneto-resistance measurements. The results reveal that the substitution of Ti for Ni within the temperature range of 2.5–300 K does not induce alterations in the crystal and magnetic structures of NiMnSb. The ordered Ni magnetic moment approaches zero. The study of the electrical transport properties of the [Formula: see text]Ti x MnSb alloys, where [Formula: see text], has demonstrated a half-metallic state at low temperatures and metallic conductivity for temperatures exceeding 160 K. A semiconductor state manifests at titanium concentrations of x = 0.2 and was observed at temperatures below 21 K. The obtained experimental results are elucidated through first-principles theoretical calculations.

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