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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 >Structural and dielectric properties of Gd-Zn substituted Ca0.5Ba0.5Fe12O19 M-type hexa-ferrites synthesized via auto-combustion method
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Structural and dielectric properties of Gd-Zn substituted Ca0.5Ba0.5Fe12O19 M-type hexa-ferrites synthesized via auto-combustion method

机译:Gd-Zn取代的结构和介电性质取代的CaO 0.5ba0.5fe12019 m型六甲酯通过自燃方法合成

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Herein we studied the effect of Gd-Zn substitution on structural and dielectric properties of Ca0.5Ba0.5-xGdxZnyFe12-yO19 (x = 0.00, 0.04, 0.08, 0.10; y = 0.00, 0.40, 0.80, 1.00) synthesized by sol-gel autocombustion method. The prepared compounds were examined via XRD, SEM along with dielectric and electrical properties. Peak patterns of XRD analysis revealed the pure phase formation of M-type hexagonal ferrite. As concentration of Gd-Zn increases the lattice parameter were also found to increase. The scanning electron microscopy investigations revealed that the size of grain lies in between 1.19 and 0.58 mu m and the size of grains are reduced on increasing the substitution of Gd-Zn concentration. It is clear that the value of resistivity increases from 6.47 x 10(9) Omega-cm to 2.40 x 10(10) Omega -cm with increasing Gd-Zn concentration. The alteration in AC conductivity as a frequency function might be explained on the ground of Maxwell-Wagner model and of Koop's Phenomenological theory. The inspected alteration in dielectric constant could be illustrated on the behalf of hopping conduction between Fe2+ and Fe3+ and space charge polarization. The dielectric loss dispersion inspection is because of Koop's phenomenological theory and Maxwell-Wagner interfacial sort polarization. (C) 2018 Elsevier B.V. All rights reserved.
机译:在此研究GD-Zn取代对Ca0.5ba0.5-xgdxznyfe12-yo19(x = 0.00,0.04,0.08,0.10; y = 0.00,0.40,0.80,10.00,0.40,0.80,10.00)的结构和介电性能的影响。凝胶自动变阻方法。通过XRD,SEM一起检查制备的化合物,以及电介质和电气性能。 XRD分析的峰值模式显示了M型六方铁素体的纯相形成。由于GD-Zn的浓度增加,也发现晶格参数增加。扫描电子显微镜研究表明,谷物的尺寸在于1.19和0.58μm,减少了增加Gd-Zn浓度的替代物的粒度。显然,电阻率值从6.47×10(9)Ω-cm至2.40×10(10)ω-CM增加,随着Gd-Zn浓度的增加。 Maxwell-Wagner模型和Koop的现象理论,可以解释作为频率函数的交流电导率的改变。可以在Fe2 +和Fe3 +和空间电荷极化之间代表跳跃传导来说明所检查的介电常数。介电损耗分散检查是因为KOOP的现象理论和Maxwell-Wagner界面排序极化。 (c)2018年elestvier b.v.保留所有权利。

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