Stabilization of room temperature spin driven ferroelectric phases in Ni2+ doped Y- type BaSrCo2-xNixFe11AlO22

J. P. Martínez-Pérez, F. Sánchez-De Jesús, C. A. Cortés- Escobedo, A. M. Bolarín-Miró

Research output: Contribution to journalArticlepeer-review

Abstract

Type II multiferroics possess the highest magnetoelectric coupling among single phase multiferroics due to the relation between the spin order and the ferroelectric polarization. However, these materials tend to exhibit magnetoelectric coupling at temperatures lower than room temperature which limits their applications. In recent years the Y-type hexaferrites have been studied due to the tunability of its magnetic structure which enables to stabilize its magnetoelectric phases up to room temperature. In the present work, the effects of Ni2+ doping in BaSrCo2-xNixFe11AlO22, with x varying from 0 to 1.5, Δx = 0.5, are studied. Temperature scan of the magnetic properties and hysteresis loops confirm that Ni2+ concentration reduces magnetization and, stabilizes the spin driven ferroelectric phases. Magnetic behavior and magnetodielectric measurements allow identifying that the samples with x of 1.0 and 1.5 mol of Ni2+ exhibit room temperature spin driven electric polarization. In addition, XRD Rietveld refinement shows a reduction of the a/b and c cell parameters while the T-S boundary through the Fe8–O9 bond is stretched, which may be attributed to the stability of the spin driven ferroelectric phases.

Original languageEnglish
Pages (from-to)27457-27463
Number of pages7
JournalCeramics International
Volume49
Issue number16
DOIs
StatePublished - 15 Aug 2023

Keywords

  • High-energy ball milling
  • Magnetic
  • Magnetic thresholds
  • Magnetopermittivity
  • Spin driven ferroelectric phases
  • Transitions
  • Y-type hexaferrite

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