RAS PhysicsЖурнал экспериментальной и теоретической физики Journal of Experimental and Theoretical Physics

  • ISSN (Print) 0044-4510
  • ISSN (Online) 3034-641X

Growth Conditions and the Structural and Magnetic Properties of Cu2MBO5 (M = Cr, Fe, Mn) Oxyborates with a Ludwigite Structure

PII
10.31857/S0044451023010030-1
DOI
10.31857/S0044451023010030
Publication type
Article
Status
Published
Authors
Volume/ Edition
Volume 163 / Issue number 1
Pages
24-34
Abstract
Copper oxyborate single crystals with a ludwigite structure, Cu2MBO5 (M = Cr, Fe, Mn), containing different substitutes in the trivalent subsystem have been grown from Bi2O3–MoO3–Na2O–B2O3 fluxes. The structural properties of grown compounds have been compared in detail using X-ray diffraction and Raman spectroscopy methods. In addition, these methods have been used to determine the degree of cationic ordering in these ludwigites. The temperature and field dependences of the Cu2MBO5 (M = Cr, Fe, Mn) ludwigite magnetization are presented.
Keywords
Date of publication
15.01.2023
Year of publication
2023
Number of purchasers
0
Views
53

References

  1. 1. E. M. Moshkina, T. P. Gavrilova, I. F. Gilmutdinov et al., J. Cryst. Growth 545, 125723 (2020).
  2. 2. R. M. Eremina, T. P. Gavrilova, E. M. Moshkina et al., J. Magn. Magn. Mater. 515 167262 (2020).
  3. 3. Svetlana Sofronova, Rushana Eremina, Ivan Yatsyk et al., AIP Conf. Proc. 2218, 040001 (2020).
  4. 4. Г. А. Петраковский, Л. Н. Безматерных, Д. А. Великанов и др., ФТТ 51, 1958 (2009).
  5. 5. И. И. Назаренко, С. Н. Софронова, Е. М. Мошкина, ЖЭТФ 153, 809 (2018).
  6. 6. S. Sofronova, E. Moshkina, I. Nazarenko et al., J. Magn. Magn. Mater. 420, 309 (2016).
  7. 7. E. Moshkina, C. Ritter, E. Eremin et al., J. Phys.: Condens. Matter 29, 245801 (2017).
  8. 8. F. Damay, J. Sottmann, F. Fauth et al., Appl. Phys. Lett. 118, 192903 (2021).
  9. 9. J. Schaefer and K. Bluhm, Z. Anorgan. Allgem. Chem. 620, 1578 (1994).
  10. 10. Л. Н. Безматерных, С. В. Белущенко, Вестник КрасГУ, физ.-мат. науки 1, 85 (2002).
  11. 11. E. M. Moshkina, M. S. Platunov, Yu. V. Seryotkin et al., J. Magn. Magn. Mater. 464, 1 (2018).
  12. 12. E. Moshkina, E. Eremin, D. Velikanov et al., J. Alloys Compd. 902, 163822 (2022).
  13. 13. E. Moshkina, A. Krylov, D. Kokh et al., Cryst. Eng.Comm. 24, 3565 (2022).
  14. 14. M. A. V. Heringer, D. L. Mariano, D. C. Freitas et al., Phys. Rev. Materials 4, 064412 (2020).
  15. 15. А. А. Дубровский, М. В. Рауцкий, Е. М. Мошкина и др., Письма в ЖЭТФ 106, 685 (2017).
  16. 16. A. G. Gamzatov, Y. S. Koshkid'ko, D. C. Freitas et al., Appl. Phys. Lett. 116, 232403 (2020).
  17. 17. M. A. Continentino, J. C. Fernandes, R. B. Guimaraes et al., Eur. Phys. J. B 9, 613 (1999).
  18. 18. G. M. Sheldrick, Acta Cryst. A 64, 112 (2008).
  19. 19. A. L. Spek, J. Appl. Cryst. 36, 7 (2003).
  20. 20. N. V. Kazak, M. S. Platunov, Yu. V. Knyazev et al., Phys. Rev. B 103, 094445 (2021).
  21. 21. I. D. Brown and D. Altermatt, Acta Cryst. B 41, 244 (1985).
  22. 22. Р. М. Еремина, Р. К. Шарипов, И. В. Яцык и др., ЖЭТФ 150, 144 (2016).
  23. 23. Hua-Bin Zhou, Ji-Ping Zhang, and Fei Wu. Can. J. Phys. 86, 807 (2008).
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