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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, electrical, magnetic and magnetoelectric properties of (1-y) [Ba0.6-xCaxSr0.4Zr0.25Ti0.75O3] + (y) [(Li0.5Fe0.5)(0.4)Ni0.18Cu0.12Zn0.3Fe2O4] composites
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Structural, electrical, magnetic and magnetoelectric properties of (1-y) [Ba0.6-xCaxSr0.4Zr0.25Ti0.75O3] + (y) [(Li0.5Fe0.5)(0.4)Ni0.18Cu0.12Zn0.3Fe2O4] composites

机译:(1-Y)的结构,电,磁性和磁电性能[Ba0.6-xcaxsr0.4zr0.25ti0.75O3] +(y)[(Li0.5Fe0.5)(0.4)Ni0.18Cu0.12Zn0.3Fe2O4] 复合材料

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摘要

Magnetoelectric composites having the nominal composition of (1-y) [Ba0.6-xCaxSr0.4Zr0.25Ti0.75O3] (BCSZTO) + (y) [(Li0.5Fe0.5)(0.4)Ni0.18Cu0.12Zn0.3Fe2O4] (LNCZFO) (x = 0.0, 0.1, 0.2 and y = 0.2, 0.4, 0.6, and 0.8) were synthesized by the solid state reaction method and sintered at 1200 degrees C for 3 h. The X-ray diffraction analysis confirms the coexistence of tetragonal perovskite BCSZTO and spinel LNCZFO phases with Ba6T17O46 as impurity phase. Microstructural and quantitative elemental of the samples were carried out by Field Emission Scanning Electron Microscopy equipped with Energy Dispersive X-ray Spectroscopy. Low frequency dielectric dispersion is attributed due to Maxwell-Wagner interfacial polarization arising from the interface of the two phases in agreement with Koop's phenomenological theory. Frequency independent behavior of dielectric constant at higher frequencies is attributed due to the inability of electric dipoles to follow the first variation of the alternating applied electric field. The dielectric constant decreases with the increasing Ca2+ concentration which is attributed due to the increased resistivity. Maxima in dielectric loss (tan delta) are appeared when the hopping frequency of electrons between different ionic sites becomes nearly equal to the frequency of the applied field. AC conductivity of the composites follows Jonscher's universal power law and the conduction mechanism is attributed due to small polaron hopping. AC conductivity increases with the increase of Ca2+ concentration. The composite materials are found to exhibit excellent frequency dependence and increases with the ferrite concentration. The permeability decreases with the increase of Ca2+ concentration which is attributed to the smaller grain size and increased magneto crystalline anisotropy. The quality factor increases with the Ca2+ ions substitution on account of the high resistive boundary segregation. The magnitude of magnetoelectric (ME) voltage coefficient increase linearly with the increase of the applied filed may be attributed to the nominally linear gradient of magnetostriction with respect to magnetic field. The magnetoelectric coefficient of the composites increases gradually as the increase in the ferrite content which is attributed due to the increase of the mechanical deformation in the magnetostrictive phase. An optimal magnetoelectric voltage coefficient of similar to 1.16 V cm(-1) Oe(-1) is obtained for x = 80 wt% (C-series composites) at room temperature. (C) 2016 Elsevier B.V. All rights reserved.
机译:具有(1-Y)的标称组成的磁电复合材料(1-Y)[Ba0.6-Xcaxsr0.4zR0.25Ti0.75O3](BCSZTO)+(Y)[(Li0.5Fe0.5)(0.4)Ni0.18Cu0.12Zn0.3Fe2O4通过固态反应方法合成(LNCZFO)(X = 0.0,0.1,0.2和Y = 0.2,0.4,0.6和0.8),并在1200℃下烧结3小时。 X射线衍射分析证实了四边形钙钛矿BCSZTO和尖晶石LNCZFO相的共存,Ba6T17O46作为杂质相。通过配备有能量分散X射线光谱的场发射扫描电子显微镜进行样品的微观结构和定量元素。低频介电色散因来自两个阶段的界面与KOOP的现象理论一致而产生的Maxwell-Wagner界面极化引起的。由于电偶极子无法遵循交替施加的电场的第一变型,较高频率在较高频率下介电常数的频率独立行为归因于较高的频率。由于电阻率增加,介电常数随着CA2 +浓度而归因的增加。当不同离子位置之间的电子的跳频变得几乎等于所施加的场的频率时,出现介电损耗(TAN DELTA)中的最大值。复合材料的交流电导率遵循Jonscher的通用电力法,导致机制由于小极化跳跃而归因于此。随着CA2 +浓度的增加,AC电导率增加。发现复合材料表现出优异的频率依赖性并随铁氧体浓度增加。随着Ca2 +浓度的增加而归因于粒度较小和磁性晶体各向异性增加的Ca2 +浓度的增加,渗透率降低。由于高电阻边界分离,CA2 +离子替代的质量因数增加。磁电(ME)电压系数随着施加的提到的增加而导致的磁电(ME)电压系数的幅度可以归因于磁场的磁棘轮的标称线性梯度。复合材料的磁电系数随着铁氧体含量的增加而逐渐增加,这是由于磁致伸缩相中的机械变形的增加而归因。在室温下为X = 80wt%(C系列复合材料)获得类似于1.16Vcm(-1)OE(-1)的最佳磁电电压系数。 (c)2016 Elsevier B.v.保留所有权利。

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