首页> 外文期刊>Journal of Composites Science >Investigation of the Phase Transitions and Magneto-Electric Response in the 0.9(PbFe0.5Nb0.5)O3-0.1Co0.6Zn0.4Fe1.7Mn0.3O4 Particulate Composite
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Investigation of the Phase Transitions and Magneto-Electric Response in the 0.9(PbFe0.5Nb0.5)O3-0.1Co0.6Zn0.4Fe1.7Mn0.3O4 Particulate Composite

机译:对0.9(PBFE0.5NB0.5)O 3 -0.1CO0.6ZN0.4FE1.7MN0.3O4颗粒状复合材料的相变和磁电响应的研究

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Multiferroic composites with enhanced magneto-electric coefficient are suitable candidates for various multifunctional devices. Here, we chose a particulate composite, which is the combination of multiferroic (PbFe0.5Nb0.5O3 , PFN) as matrix and magnetostrictive (Co0.6Zn0.4Fe1.7Mn0.3O4 , CZFMO) material as the dispersive phase. The X-ray diffraction analysis confirmed the formation of the composite having both perovskite PFN and magnetostrictive CZFMO phases. The scanning electron micrograph (SEM) showed dispersion of the CZFMO phase in the matrix of the PFN phase. The temperature-dependent magnetization curves suggested the transition arising due to PFN and CZFMO phase. The temperature-dependent dielectric study revealed a second-order ferroelectric to the paraelectric phase transition of the PFN phase in the composite with a small change in the transition temperature as compared to pure PFN. The magnetocapacitance (MC%) and magnetoimpedance (MI%) values (obtained from the magneto-dielectric study at room temperature (RT)) at 10 kHz were found to be 0.18% and 0.17% respectively. The intrinsic magneto-electric coupling value for this composite was calculated to be 0.14 mVcm?1Oe?1 , which is comparable to other typical multiferroic composites in bulk form. The composite PFN-CZFMO exhibited a converse magneto-electric effect with a change in remanent magnetization value of ?58.34% after electrical poling of the material. The obtained outcomes from the present study may be utilized in the understanding and development of new technologies of this composite for spintronics applications.
机译:具有增强磁力系数的多体复合材料是各种多功能器件的合适候选。在此,我们选择了一种颗粒状复合材料,其是多法(PBFE0.5NB0.5O3,PFN)作为基质和磁致伸缩(COO.6ZN0.4FE1.7MN0.3O4,CZFMO)材料作为分散相的组合。 X射线衍射分析证实了具有钙钛矿PFN和磁致伸缩性CZFMO相的复合物的形成。扫描电子显微照片(SEM)显示CZFMO相在PFN相的基质中的分散。温度依赖性磁化曲线表明由于PFN和CZFMO相而产生的过渡。与纯PFN相比,温度依赖性介电研究揭示了在复合材料中的PFN相中PFN相的施加电相转变的二阶铁相转变。磁致码度(MC%)和磁离心(MI%)(MI%)值(在室温(RT)在10kHz的磁电介质研究获得)分别为0.18%和0.17%。该复合材料的固有磁电耦合值计算为0.14mVcm?1oe?1,其与块状形式的其他典型的多体复合材料相当。复合PFN-CZFMO呈现逆磁效应,在材料的电动搅动后的剩余磁化值的变化下变化。来自本研究的获得的结果可用于理解和开发该复合材料的新技术,用于闪蒸应用。

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