Bochenek Dariusz, Niemiec Przemysław, Chrobak Artur
Faculty of Science and Technology, Institute of Materials Engineering, University of Silesia in Katowice, 41-500 Chorzów, Poland.
Faculty of Science and Technology, Institute of Physics, University of Silesia in Katowice, 41-500 Chorzów, Poland.
Materials (Basel). 2021 May 11;14(10):2488. doi: 10.3390/ma14102488.
In this paper, ferroelectric-ferrimagnetic ceramic composites based on multicomponent PZT-type (PbZrTiO-type) material and ferrite material with different percentages in composite compositions were obtained and studied. The ferroelectric component of the composite was a perovskite ceramic material with the chemical formula PbBi(ZrTi)(NbMn)O (P), whereas the magnetic component was nickel-zinc ferrite with the chemical formula NiZnFeO (F). The process of sintering the composite compounds was carried out by the free sintering method. Six ferroelectric-ferrimagnetic ceramic P-F composite compounds were designed and obtained with different percentages of its components, i.e., 90/10 (P90-F10), 85/15 (P85-F15), 80/20 (P80-F20), 60/40 (P60-F40), 40/60 (P40-F60), and 20/80 (P20-F80). X-ray diffraction patterns, microstructural, ferroelectric, dielectric, magnetic properties, and DC electrical conductivity of the composite materials were investigated. In this study, two techniques were used to image the microstructure of P-F composite samples: SB (detection of the signals from the secondary and backscattered electron detectors) and BSE (detection of backscattered electrons), which allowed accurate visualization of the presence and distribution of the magnetic and ferroelectric component in the volume of the composite samples. The studies have shown that at room temperature, the ceramic composite samples exhibit good magnetic and electrical properties. The best set of physical properties and performance of composite compositions have ceramic samples with a dominant phase of ferroelectric component and a small amount of the ferrite component (P90-F10). Such a composition retains the high ferroelectric properties of the ferroelectric component in the composite while also acquiring magnetic properties. These properties can be prospectively used in new types of memory and electromagnetic converters.
本文制备并研究了基于多组分PZT型(PbZrTiO型)材料和铁氧体材料、具有不同复合比例的铁电-亚铁磁陶瓷复合材料。复合材料的铁电组分是化学式为PbBi(ZrTi)(NbMn)O(P)的钙钛矿陶瓷材料,而磁组分是化学式为NiZnFeO(F)的镍锌铁氧体。复合化合物的烧结过程采用自由烧结法进行。设计并制备了六种具有不同组分比例的铁电-亚铁磁陶瓷P-F复合化合物,即90/10(P90-F10)、85/15(P85-F15)、80/20(P80-F20)、60/40(P60-F40)、40/60(P40-F60)和20/80(P20-F80)。研究了复合材料的X射线衍射图谱、微观结构、铁电、介电、磁性能以及直流电导率。在本研究中,使用了两种技术对P-F复合样品的微观结构进行成像:SB(检测二次电子和背散射电子探测器的信号)和BSE(检测背散射电子),这使得能够准确可视化复合样品体积中磁性和铁电组分的存在和分布。研究表明,在室温下,陶瓷复合样品表现出良好磁性能和电性能。具有铁电组分主相和少量铁氧体组分(P90-F10)的陶瓷样品具有最佳的物理性能和复合组成性能。这样的组成在复合材料中保留了铁电组分的高铁电性能,同时还获得了磁性。这些性能有望应用于新型存储器和电磁转换器。