Wojcik Anna, Maziarz Wojciech, Kowalczyk Maciej, Chulist Robert, Szlezynger Maciej, Czaja Pawel, Hawelek Lukasz, Zackiewicz Przemyslaw, Wlodarczyk Patryk, Kolano-Burian Aleksandra
Institute of Metallurgy and Materials Science, Polish Academy of Sciences, 25 Reymonta Str., 30-059 Krakow, Poland.
Faculty of Materials Science and Engineering, Warsaw University of Technology, 141 Woloska Str., 02-507 Warsaw, Poland.
Materials (Basel). 2020 Apr 2;13(7):1639. doi: 10.3390/ma13071639.
In this work, a detailed microstructural investigation of as-melt-spun and heat-treated FeCoB 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.
在这项工作中,对熔纺态和热处理后的FeCoB薄带进行了详细的微观结构研究。熔纺态薄带在室温下主要为非晶态。随后的加热表明,在403℃发生了从非晶态到晶体α-(Fe,Co)相的转变。在25 - 500℃的温度范围内以200℃/min的加热速率进行的原位透射电子显微镜观察表明,第一个结晶核出现在接近370℃的温度下。随着温度进一步升高,α-(Fe,Co)微晶的体积显著增加。此外,结果表明,200℃/min的加热速率能形成精细且均匀的微观结构,其中α-(Fe,Co)微晶的尺寸比薄带以20℃/min加热时小三倍。本研究的下一步涉及退火时间和温度对薄带微观结构和矫顽力的影响。结果表明,在485℃退火较短时间(2 s)会得到α-(Fe,Co)微晶均匀分布的材料,其平均尺寸为30 nm,分散在残余非晶基体中。这反映在矫顽力(20.5 A/m)上,它显著取决于微晶的体积分数、尺寸和分布。