• Title of article

    α″-Fe16N2 phase formation of plasma-synthesized core–shell type α-Fe nanoparticles under various conditions

  • Author/Authors

    Rizka Zulhijah، نويسنده , , Kazuki Yoshimi، نويسنده , , Asep Bayu Dani Nandiyanto، نويسنده , , Takashi Ogi، نويسنده , , Toru Iwaki، نويسنده , , Keitaro Nakamura، نويسنده , , Kikuo Okuyama ، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2014
  • Pages
    9
  • From page
    582
  • To page
    590
  • Abstract
    Four kinds of plasma-synthesized core–shell type α-Fe nanoparticles with various particle diameters, input composition of shell’s raw materials, and shell compounds were used to investigate dependence of these nanoparticle parameters on nitridation and magnetic performance. Effects of hydrogen-gas reduction conditions (i.e., temperature and reduction time) prior to nitridation treatment were also investigated in detail. Experimental result showed that the nanoparticle parameters and the hydrogen reduction treatment influenced yield of α″-Fe16N2. Increases in particle diameter and shell amount resulted in the more difficulties in nitridation reaction because of the limitation in nitrogen diffusion phenomena. Changes in shell compound from Al2O3 to SiO2 resulted in the more difficulties in α″-Fe16N2 phase formation. We also found that modification of reduction conditions affect the final product quality. We obtained that by optimization the nanoparticle parameters and the reduction process, the formation of nanoparticles with high yield of α″-Fe16N2 (up to 99%) can be achieved. Finally, we found that for 43-nm core–shell Fe/Al2O3 magnetic nanoparticles containing 10 wt% of Al2O3, the combination of 1.5-h reduction at 300 °C and 10-h nitridation at 145 °C gave the highest yield of α″-Fe16N2. The best saturation magnetization of 190 emu/g was achieved when using the amount of Al2O3 of 20 wt%.
  • Keywords
    Hydrogen reduction reaction , Core–shell nanoparticle , Magnetic material , Iron nitride , Nitridation process
  • Journal title
    Advanced Powder Technology
  • Serial Year
    2014
  • Journal title
    Advanced Powder Technology
  • Record number

    1248650