Temperature dependences of the magnetic anisotropy constants of single-crystal inclusions MnSb in an InSb matrix
- Autores: Dmitriev A.I.1, Kochura A.V.2,3, Kuzmenko A.P.2, Htet Aung Z.2, Rodionov V.V.2, Marenkin S.F.4,5, Aronzon B.A.3
- 
							Afiliações: 
							- Federal Research Center for Problems of Chemical Physics and Medicinal Chemistry of the Russian Academy of Sciences
- Southwest State University
- Lebedev Physical Institute of the Russian Academy of Sciences
- Kurnakov Institute of General and Inorganic Chemistry of the Russian Academy of Sciences
- MISIS National University of Science and Technology
 
- Edição: Volume 88, Nº 2 (2024)
- Páginas: 227-230
- Seção: New Materials and Technologies for Security Systems
- URL: https://rjpbr.com/0367-6765/article/view/654754
- DOI: https://doi.org/10.31857/S0367676524020101
- EDN: https://elibrary.ru/RSGJUY
- ID: 654754
Citar
Texto integral
 Acesso aberto
		                                Acesso aberto Acesso está concedido
						Acesso está concedido Acesso é pago ou somente para assinantes
		                                							Acesso é pago ou somente para assinantes
		                                					Resumo
The contributions of the first order K1 and second order K2 magnetic anisotropy constants to the effective constant are separated. Their competition determines the type of magnetic anisotropy «easy plane». Extrapolation of the dependences K1(T) and K2(T) to the region of high temperatures made it possible to predict the temperature TSR = 570 K, which corresponds to the spin-reorientation transition, at which the easy-axis magnetic anisotropy is formed.
Texto integral
 
												
	                        Sobre autores
A. Dmitriev
Federal Research Center for Problems of Chemical Physics and Medicinal Chemistry of the Russian Academy of Sciences
							Autor responsável pela correspondência
							Email: aid@icp.ac.ru
				                					                																			                												                	Rússia, 							Chernogolovka						
A. Kochura
Southwest State University; Lebedev Physical Institute of the Russian Academy of Sciences
														Email: aid@icp.ac.ru
				                					                																			                												                	Rússia, 							Kursk; Moscow						
A. Kuzmenko
Southwest State University
														Email: aid@icp.ac.ru
				                					                																			                												                	Rússia, 							Kursk						
Zaw Htet Aung
Southwest State University
														Email: aid@icp.ac.ru
				                					                																			                												                	Rússia, 							Kursk						
V. Rodionov
Southwest State University
														Email: aid@icp.ac.ru
				                					                																			                												                	Rússia, 							Kursk						
S. Marenkin
Kurnakov Institute of General and Inorganic Chemistry of the Russian Academy of Sciences; MISIS National University of Science and Technology
														Email: aid@icp.ac.ru
				                					                																			                												                	Rússia, 							Moscow; Moscow						
B. Aronzon
Lebedev Physical Institute of the Russian Academy of Sciences
														Email: aid@icp.ac.ru
				                					                																			                												                	Rússia, 							Moscow						
Bibliografia
- Wibowo N.A., Irawan C.F., Setiawan A. // J. Phys. Conf. Ser. 2019. V. 1153. Art. No. 012054.
- Cooley J.A., Horton M.K., Levin E.E. et al. // Chem. Mater. 2020. V. 32. No. 3. P. 1243.
- Okita T., Makino Y. // J. Phys. Soc. Japan. 1968. V. 25. No. 1. P. 120.
- Markandeyulu G., Rama Rao K.V.S. // J. Magn. Magn. Mater. 1987. V. 67. No. 2. P. 215.
- Pan Y., Sun G. // Scripta Mater. 1999. V. 41. No. 8. P. 803.
- Ashizawa Y., Saito S., Takahashi M. // J. Appl. Phys. 2002. V. 91. No. 10. P. 803.
- Liang D., Yang Y.B., Yang W.Y. et al. // J. Alloys Compounds. 2021. V. 856. No. 5. Art. No. 158184.
- Новоторцев В.М., Кочура А.В., Маренкин С.Ф. и др. // Журн. неорг. хим. 2011. Т. 56. № 12. С. 2038; Novotortsev V.M., Kochura A.V., Marenkin S.F. et al. // Russ. J. Inorg. Chem. 2011. V. 56. No. 12. P. 1951.
- Дмитриев А.И., Кочура А.В., Маренкин С.Ф. и др. // Письма в ЖТФ. 2021. Т. 47. № 10. С. 46; Dmitriev A.I., Kochura A.V., Marenkin S.F. et al. // Tech. Phys. Lett. 2021. V. 47. No. 7. P. 490.
- Chen T., Charlan G.B., Keezer R.C. // J. Cryst. Growth. 1977. V. 37. No. 7. P. 29.
- Maskery I., Burrows C.W., Walker M. et al. // J. Vac. Sci. Technol. 2016. V. 34. No. 4. Art. No. 041219.
- Oveshnikov L.N., Granovsky A.B., Davydov A.B. et al. // J. Magn. Magn. Mater. 2022. V. 563. No. 1. Art. No. 169873.
- Umehara Y., Koda S. // Metallogr. 1974. V. 7. No. 4. P. 313.
- Chong X. Yu., Jiang Y.H., Zhou R., Feng J. // Sci. Reports. 2016. V. 6. Art. No. 21821.
- Romcevic M., Gilic M., Kilanski L. et al. // J. Raman Spectrosc. 2018. V. 49. No. 10. P. 1678.
- Мамедов И.Х., Араслы Д.Г., Рагимов Р.Н., Халилова А.А. // ФТП. 2020. Т. 54. № 4. С. 341; Mammadov I.Kh., Arasly D.H., Rahimov R.N., Khalilova A.A. // Semiconductors. V. 54. No. 4. P. 412.
- Chikazumi S. Physics of magnetism. New York: Wiley, 1964. 554 p.
- Брюхатов Н.Л., Киренский Л.В. // ЖЭТФ. 1938. Т. 6. № 2. С. 198; Brukhatov N.L., Kirensky L.V. // Phys. Zeit. der Sowjetunion. 1937. V. 12. No. 5. P. 602.
Arquivos suplementares
 
				
			 
						 
						 
					 
						 
						 
									

 
  
  
  Enviar artigo por via de e-mail
			Enviar artigo por via de e-mail 



