Title :
Effect of heat treatment on the microstructure and magnetic properties of polycrystalline MnZn ferrites
Author :
Ramesh, M. ; Dey, Shuvashis
Author_Institution :
Storage Technol. Corp., Louisville, CO
fDate :
11/1/1994 12:00:00 AM
Abstract :
The effect of heat treatment of commercially available polycrystalline MnZn ferrite slabs was studied for temperatures near typical recording head glassing temperatures. Toroid-shaped specimens were heated in atmospheres of varying levels of oxygen and the deterioration in magnetic properties was measured. The surfaces of the exposed specimens were inspected by means of optical and electron microscopy and the occurrence of ferrite instabilities such as grain growth, segregation of secondary phases etc. were observed. The degradation also appeared to be surface-driven. To investigate this further, some samples were heat treated in highly oxidizing and reducing atmospheres to induce gross ferrite instabilities. The near surface regions of these samples were then characterized by x-ray diffraction, x-ray photoelectron spectroscopy (XPS) and conversion electron and conversion x-ray Mossbauer spectroscopy (CEMS and CXMS). In addition to grain growth and other structural changes, the precipitation of extraneous phases appears to be a major mode of ferrite failure during such annealing
Keywords :
Mossbauer effect; X-ray diffraction; X-ray photoelectron spectra; crystal microstructure; electron microscopy; ferrites; magnetic heads; manganese compounds; precipitation; segregation; surface magnetism; zinc compounds; MnZnFeO; annealing; conversion electron spectroscopy; conversion x-ray Mossbauer spectroscopy; electron microscopy; ferrite instabilities; grain growth; heat treatment; magnetic properties; microstructure; polycrystalline MnZn ferrites; precipitation; segregation of secondary phases; surface-driven degradation; toroid-shaped specimens; typical recording head glassing temperatures; x-ray diffraction; x-ray photoelectron spectroscopy; Atmosphere; Electrons; Ferrites; Heat treatment; Microstructure; Optical microscopy; Optical recording; Spectroscopy; Surface treatment; Temperature;
Journal_Title :
Magnetics, IEEE Transactions on