Abstract
In this work, a detailed microstructural investigation of as-melt-spun and heat-treated Fe67Co20B13 ribbons was performed. The as-melt-spun ribbon was predominantly amorphous at room temperature. Subsequent heating demonstrated an amorphous to crystalline α-(Fe,Co) phase transition at 403 °C. In situ transmission electron microscopy observations, carried out at the temperature range of 25–500 °C and with the heating rate of 200 °C/min, showed that the first crystallized nuclei appeared at a temperature close to 370 °C. With a further increase of temperature, the volume of α-(Fe,Co) crystallites considerably increased. Moreover, the results showed that a heating rate of 200 °C/min provides for a fine and homogenous microstructure with the α-(Fe,Co) crystallites size three times smaller than when the ribbon is heated at 20 °C/min. The next step of this research concerned the influence of both the annealing time and temperature on the microstructure and coercivity of the ribbons. It was shown that annealing at 485 °C for a shorter time (2 s) led to materials with homogenous distribution of α-(Fe,Co) crystallites with a mean size of 30 nm dispersed in the residual amorphous matrix. This was reflected in the coercivity (20.5 A/m), which significantly depended on the volume fraction of crystallites, their size, and distribution.
Funder
National Centre for Research and Development
Subject
General Materials Science
Reference25 articles.
1. Magnetic Nanomaterials: Fundamentals, Synthesis and Applications;Hou,2017
2. Crystalline and amorphous soft magnetic materials and their applications—Status of art and challenges;Gavrila;J. Optoelectron. Adv. Mater.,2002
3. Modern soft magnets: Amorphous and nanocrystalline materials
4. Cobalt-based bulk glassy alloy with ultrahigh strength and soft magnetic properties
5. New Fe‐based soft magnetic alloys composed of ultrafine grain structure
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