Surfactant Assisted Synthesis of Aluminum Doped SrFe10Al2O19 Hexagonal Ferrite

Abstract

M-type aluminum doped SrFe10Al2O19 were synthesized via co-precipitation method using cetyltrimethyl ammonium bromide (CTAB) as a surfactant. The effects of CTAB content (x0, 1, 3, and9wt. %) on the formation, structure, morphology, magnetic, and dielectric properties of theSrFe10Al2O19 nanoparticles were investigated. X-ray diffraction results show elimination of a-Fe2O3phase from samples prepared using CTAB. Morphological changes including grain and crystallite size was noticed with the increase in the CTAB content. With the increase in CTAB, powder particles grew in hexagonal plates. A linear increase in saturation magnetization, Ms, with CTAB content was observed from 56.5 emu/g at 0% CTAB to 66.4 emu/g at 9% CTAB. This is a net increase of 17.5% in Ms. The coercivity (Hc 5700 Oe) of sample reached maximum at 1% CTAB and reduced with further CTAB content reaching to a minimum value of 4488 Oe at 9% CTAB. A slight increase in Curie temperature(735 K) was also observed for samples synthesized using CTAB as compared to that of sample prepared in the absence of CTAB (729 K). Samples synthesized with CTAB show higher dielectric constants as compared to samples prepared without CTAB, while dielectric constant for all samples show decrease in value with the increase in frequency. These results imply that CTAB may act as a crystallization master, controlling the nucleation and growth of SrFe10Al2O19 crystal. The study delineates the scope of improving magnetic properties of ferrites without substitution of metal ions.

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Document Details

Document Type
Technical Report
Publication Date
May 05, 2015
Accession Number
AD1056202

Entities

People

  • D. Neupane
  • J. P. Liu
  • Liqiang Wang
  • Nabin Poudyal
  • S. Mishra

Organizations

  • University of Texas at Arlington

Tags

Communities of Interest

  • Advanced Electronics

DTIC Thesaurus Topics

  • Coercivity
  • Crystal Structure
  • Crystals
  • Dielectric Permittivity
  • Dielectric Properties
  • Domain Walls
  • Ferrites
  • Grain Size
  • Laboratory Magnetometers
  • Magnetic Domains
  • Magnetic Fields
  • Magnetic Properties
  • Materials Science
  • Nanoparticles
  • Particle Size
  • Particles
  • X Rays

Fields of Study

  • Materials science

Readers

  • Analytical Chemistry
  • Materials Science and Engineering.
  • Nanoscale Plasmonic Nanotechnology

Technology Areas

  • Biotechnology