Title :
Microstructures and Corresponding Magnetic Properties of BaAl
Fe
O
Author :
Kim, JinBae ; Cho, Sang-Geun ; Kang, Namseok ; Choi, Kwangyeol ; Kim, Jongryoul
Author_Institution :
Mater. & Components Lab., LG Electron. Adv. Res. Inst., Seoul, South Korea
Abstract :
We present the results of the magnetic domain structures of BaAl2Fe10O19 nanopowders prepared by a self-propagating combustion process. Amorphous precursors were calcined at 850 °C for 2 h with NaCl (Sample I) and without NaCl (Sample II). The transmission electron microscope and atomic force microscopy images evidently suggested that there was a topological difference between Sample I (plate- and rod-shaped nanopowders) and Sample II (rod-shaped nanoparticles). We observed a considerably enhanced coercivity in Sample II, compared to Sample I. This result can be understood by the change in the magnetic domain width due to the shape effect of the nanopowders, which was investigated by measuring the field-controlled magnetic force microscopy.
Keywords :
aluminium compounds; atomic force microscopy; barium compounds; calcination; coercive force; combustion synthesis; magnetic domains; magnetic force microscopy; magnetic particles; nanofabrication; nanomagnetics; nanoparticles; transmission electron microscopy; BaAl2Fe10O19; atomic force microscopy; calcination; coercivity; field-controlled magnetic force microscopy; magnetic domain; magnetic properties; microstructural properties; nanopowders; self-propagating combustion process; temperature 850 degC; time 2 h; transmission electron microscopy; Amorphous magnetic materials; Barium; Magnetic domains; Magnetic hysteresis; Magnetic resonance imaging; Magnetosphere; Nanoparticles; Hexaferrite; high coercivity; magnetic domains; magnetic force microscopy (MFM);
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2012.2200242