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首页> 外文期刊>European Physical Journal Plus >Effect of ferrite phase addition on the functional properties of (K0.5Na0.5)NbO(3)ceramics
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Effect of ferrite phase addition on the functional properties of (K0.5Na0.5)NbO(3)ceramics

机译:铁氧体相消除对(K0.5NA0.5)NBO(3)陶瓷功能性质的影响

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摘要

Lead-free ceramics consist of ferroelectric K0.5Na0.5NbO3 (KNN) and spinel ferrimagnetic CoFe2O4 (CFO) phases were prepared by the conventional solid state reaction method. The constituent phase presence of multiferroic material was confirmed by X-ray diffraction techniques with Rietveld refinement methods. A systematic study of dielectric properties at room temperature with frequency revealed that the dispersion is in accordance with the Cole-Cole model with the presence of dc conductivity at lower frequencies. The main reason for this type of dispersion was related with the different heterogeneous conduction mechanism between the ferroelectric and ferrite phases in multiferroic structures. Complex impedance analysis re-established non-Debye type dielectric relaxation mechanism in the multiferroic. The effect of constituents phase variation on the electric and magnetic hysteresis behavior was also examined. The ferroelectric order diluted with the addition of ferrite content. The remnant magnetization (M-r) and saturation magnetization (M-s) values increased while the coercivity (H-c) values of the materialss decreased with the addition of ferrite content. We established that this material is a room temperature multiferroic and highlighted a possible way to modulate functional properties of this lead-free materials for application in microelectromechanical system (MEMS) technology.
机译:通过常规固态反应方法制备无铅陶瓷由铁电K0.5NA0.5NO.5N0.5NO.5N0.5NO.5NO.5NO.5NO.5NO.5NO.5nBO 3(KNN)和尖晶石亚铁COFE2O4(CFO)相。通过具有RIETVELD细化方法的X射线衍射技术证实了多体材料的组成相存在。频率在室温下对介电性质的系统研究显示,分散体根据COLE-COLE模型,在较低频率下存在DC电导率。这种类型的分散体的主要原因是与多体结构中铁型和铁氧体相之间的不同异构导通机制有关。复杂的阻抗分析在多二分析中重新建立了非去德德型介电松弛机制。还检查了组分相变对电磁滞后行为的影响。通过添加铁氧体含量稀释的铁电阶。残余磁化(M-R)和饱和磁化强度(M-S)值增加,而使用铁氧体含量的矫顽力(H-C)降低。我们确定该材料是室温多重的,并强调了调节该无铅材料功能性的可能方法,以便在微机电系统(MEMS)技术中应用。

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