Ferrite-Based Nanoparticles Synthesized from Natural Iron Sand as the Fe 3+ Ion Source

  • Anjelh Baqiya M
  • Asih R
  • Ghufron M
  • et al.
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Abstract

Ferrite-based nanoparticles, namely, bismuth ferrite (BiFeO 3) and calcium fer-rite (CaFe 4 O 7), have been synthesized via sol-gel and chemically dissolved method, respectively, employing hematite (α-Fe 2 O 3) as the Fe 3+ ion source. Firstly, α-Fe 2 O 3 nanoparticles were prepared from natural iron sand containing mostly magnetite (Fe 3 O 4) phase through coprecipitation technique continued by sintering process at 800°C for 2 h. Higher BiFeO 3 phase content was achieved after Bi-Fe gel being annealed at 650°C for 1 h in air atmosphere. Furthermore, major phase of CaFe 4 O 7 was formed with molar ratio of Fe 3+ /Ca 2+ = 6 and sintering temperature of 800°C for 3 h. Interestingly, the powders with dominant CaFe 4 O 7 phase, known as calcium biferrite, exhibit higher ferromagnetism at room temperature. The magnetic properties of the calcium biferrite are comparable to those of barium hexaferrite which can be applied for radar-absorbing material. Meanwhile, BiFeO 3 powders also show weak room temperature ferromagnetism. It has also demonstrated that Ni doping in the bismuth ferrite (BiFe 1− xNi x O 3 with x = 0.1) nanoparticles results in enhancement of the magnetic properties. Moreover, a ferroelectric hysteresis loop and a trend of frequency dependence of the dielectric constant have been observed, which were enhanced by Pb doping (Bi 1− yPb y FeO 3 with y = 0.1). These results suggest a multiferroic behavior in the BiFeO 3 nanoparticles.

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Anjelh Baqiya, M., Asih, R., Ghufron, M., Mastuki, Yuli Retnowati, D., Triwikantoro, & Darminto. (2020). Ferrite-Based Nanoparticles Synthesized from Natural Iron Sand as the Fe 3+ Ion Source. In Nanocrystalline Materials. IntechOpen. https://doi.org/10.5772/intechopen.88027

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