4.7 Article

Polarization origin and iron positions in indium doped barium hexaferrites

期刊

CERAMICS INTERNATIONAL
卷 44, 期 1, 页码 290-300

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.ceramint.2017.09.172

关键词

Substituted hexaferrites; Neutron powder diffraction; Crystal and magnetic structure; Spontaneous polarization; Magnetic moment

资金

  1. Ministry of Education and Science of the Russian Federation in the framework of Increase Competitiveness Program of NUST MISiS among the leading world scientific and educational centers [K4-2017-041, K3-2017-059]
  2. Belarusian Republican Foundation for Basic Research [F17D-003]
  3. Joint Institute for Nuclear Research [04-4-1121-2015/2017]
  4. Act 211 Government of the Russian Federation [02.A03.21.0011]
  5. Ministry of Education and Science of the Russian Federation [10.9639.2017/8.9, RFMEFI59417X0014]
  6. Russian Federation

向作者/读者索取更多资源

M-type hexaferrite SaFe(12-x)In(x)O(19) (x = 0.1, 1.2) samples were investigated by high resolution neutron powder diffraction and vibration sample magnetometry in a wide temperature range of 4-730 K. Structural and magnetic parameters were determined including the unit cell parameters, ionic coordinates, thermal isotropic factors, occupation positions, bond lengths and bond angles, microstrain values and magnetic moments. In3+ cations may be located only in the Fe1-2a and Fe2- 2b crystallographic positions with equal probability for the x = 0.1 sample. At x = 1.2 about half of In3+ cations occupy the Fe5-12k positions whilst the other half are equiprobably located in the Fel- 2a and Fe2-2b positions. The spontaneous polarization was observed for these compositions at 300 K. The influence of structural parameters on the temperature behavior of Fe3+(i) - O2- - Fe-3 (j) (i, j = 1, 2, 3, 4, 5) indirect superexchange interactions was established. With the substitution level increase the superexchange interactions between the magnetic positions inside and outside the sublattices are broken which leads to a decrease in the value of the corresponding magnetic moments.

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