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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >A comparative study on structural, dielectric and multiferroic properties of CaFe2O4/BaTiO3 core-shell and mixed composites
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A comparative study on structural, dielectric and multiferroic properties of CaFe2O4/BaTiO3 core-shell and mixed composites

机译:CaFe2O4 / BaTiO3核壳及混合复合材料的结构,介电和多铁性性质的比较研究

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The core-shell CaFe2O4@BaTiO3 and (1 - x) CaFe2O4 - xBaTO(3) (x = 0.3, 0.5, 0.7) mixed composites were synthesized using a combination of solution processing and solid state reaction method respectively followed by high temperature calcinations. The presence of the constituent spinel-ferrite phases in both core-shell and mixed nanocomposites were confirmed by X-ray diffraction patterns and transmission electron microscopy. High-resolution transmission electron microscope images indicate a clear view of ferrite and ferroelectric phases in each core-shell and mixed composite, where the ME coupling effect of ferrite and ferroelectric phase happened. Dependence of dielectric constant (epsilon'), loss tangent (tan delta) and AC conductivity (sigma(AC)) with frequency (100 Hze2 MHz) and temperature (25 degrees C-550 degrees C) with increasing probing frequency (1 kHz-2 MHz) of the composites have been investigated. The peak observed in mixed composites and core-shell nanostructures in the low temperature range (130 degrees C-150 degrees C) are attributed to ferroelectric to paraelectric phase transition of BaTO3. The second peak observed at high temperature attributed to T-C (Curie temperature) of the ferrite (CaFe2O4) phase. The core-shell composite did not show any magnificent improvement in dielectric properties than mixed composites. The presence of ordered FE and FM behavior at room temperature was confirmed by observation of P-E and M-H hysteresis loops; respectively and core-shell composite shows drastic improvement in ferroelectric, magnetic and magneto-electric properties than the mixed composites. In addition, the calculated linear ME coupling coefficient results reveal strong ME coupling effect and the maximum recorded value is similar to 30.32 mV/cmOe for the core-shell composite. The larger value of ME coupling coefficient may arise from larger saturation magnetization and remnant magnetization of the core-shell composite. (C) 2016 Elsevier B.V. All rights reserved.
机译:分别采用固溶反应法和固相反应法结合高温煅烧法合成了核-壳CaFe2O4 @ BaTiO3和(1-x)CaFe2O4-xBaTO(3)(x = 0.3、0.5、0.7)混合复合材料。 X射线衍射图谱和透射电子显微镜证实了核壳和混合纳米复合材料中尖晶石-铁素体相的存在。高分辨率透射电子显微镜图像清晰地显示了每个核壳和混合复合材料中的铁素体和铁电相,其中发生了铁素体和铁电相的ME耦合作用。介电常数(ε),损耗角正切(tanδ)和交流电导率(sigma(AC))与频率(100 Hze2 MHz)和温度(25摄氏度至550摄氏度)随探测频率(1 kHz- 2 MHz)的复合材料已被调查。在低温范围(130摄氏度至150摄氏度)的混合复合材料和核壳纳米结构中观察到的峰归因于BaTO3的铁电至顺电相变。在高温下观察到的第二个峰归因于铁氧体(CaFe2O4)相的T-C(居里温度)。与混合复合材料相比,核-壳复合材料的介电性能没有任何显着改善。通过观察P-E和M-H磁滞回线确认了室温下有序的FE和FM行为的存在。芯-壳复合材料的铁电,磁和磁电性能比混合复合材料显着提高。此外,计算得到的线性ME耦合系数结果显示出很强的ME耦合效果,核壳复合材料的最大记录值类似于30.32 mV / cmOe。 ME耦合系数的较大值可能来自芯-壳复合材料的较大的饱和磁化强度和残余磁化强度。 (C)2016 Elsevier B.V.保留所有权利。

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