Investigation of surface morphology of thin metal films with magnetic layers Fe-Cr-Co

V.S. Zayonchkovsky, Aung Kyaw Kyaw, A. Andreev
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Abstract

Films containing layers of dispersion-hardening alloys (LDHA) based on the Fe-Cr-Co system were obtained by magnetron sputtering. LDHA acquire the properties of film permanent magnets after a single-stage «fast» high-vacuum annealing. Bulk materials acquire such properties only after many hours of multi-stage heat treatment. The film samples acquire these properties in tens of seconds. The morphology of their surface was studied to determine the origin of the coercive force of film samples. The surface morphology was studied using high resolution scanning electron microscopy and atomic force microscopy. We studied two compositions that, in bulk, have a different tendency to form many phases during crystallization. In magnetron sputtering, the alloy in which a multiphase state is easily formed is polycrystalline. The antipode alloy in magnetron sputtering is realized in an amorphous state. After annealing, both alloys are in a polycrystalline state. Electron microscopic examination showed that as a result of annealing, crystallites are formed with a large projection onto the substrate plane, which grow due to the nearest neighbors. Moreover, these crystallites have not only a large area, but also a height. After annealing, both alloys are in a polycrystalline state. Electron microscopic examination showed that as a result of annealing, crystallites are formed with a large projection onto the substrate plane, which grow due to the nearest neighbors. Moreover, these crystallites have not only a large area, but also a height. What is determined by atomic force microscopy. High crystallites are also faceted. This may indicate that the composition of these crystallites differs from the composition of the surrounding layer, which may be the reason for the increase in coercive force as a result of annealing.
Fe-Cr-Co磁性金属薄膜的表面形貌研究
采用磁控溅射法制备了Fe-Cr-Co分散硬化合金(LDHA)薄膜。LDHA经单级“快速”高真空退火后获得薄膜永磁体的性能。块状材料只有经过许多小时的多级热处理才能获得这样的性能。薄膜样品在几十秒内获得这些特性。研究了薄膜样品的表面形貌,确定了薄膜样品矫顽力的来源。采用高分辨率扫描电镜和原子力显微镜对其表面形貌进行了研究。我们研究了两种组合物,它们在结晶过程中有不同的形成许多相的倾向。在磁控溅射中,容易形成多相态的合金是多晶合金。磁控溅射对极合金是在非晶状态下实现的。退火后,两种合金均处于多晶状态。电镜检查表明,退火后形成的晶体在衬底平面上有较大的投影,其生长是由于最近邻。此外,这些晶体不仅面积大,而且高度高。退火后,两种合金均处于多晶状态。电镜检查表明,退火后形成的晶体在衬底平面上有较大的投影,其生长是由于最近邻。此外,这些晶体不仅面积大,而且高度高。原子力显微镜测定的是什么。高晶也有多面性。这可能表明这些晶体的组成与周围层的组成不同,这可能是退火导致矫顽力增加的原因。
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