首页> 外文期刊>Journal of Electronic Materials >Structural, Dielectric, and Electrical Propertiesnof Bi1−xn Pbn xn Fe1−xn (Zr0.5Ti0.5)n xn O3
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Structural, Dielectric, and Electrical Propertiesnof Bi1−xn Pbn xn Fe1−xn (Zr0.5Ti0.5)n xn O3

机译:Bi1-xn Pbn xn Fe1-xn(Zr0.5Ti0.5)n xn O3的结构,介电和电特性n

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Polycrystalline samples of Bi1−x Pb x Fe1−x (Zr0.5Ti0.5) x O3 (BPFZTO) with x = 0.0, 0.2, 0.3, and 0.4 were prepared by high-temperature solid-state reaction. Preliminary structural analysis of calcined powders of the materials by use of x-ray powder diffraction confirmed formation of single-phase systems with the tetragonal structure. Room-temperature scanning electron micrographs of the samples revealed uniform distribution of grains of low porosity and different dimensions on the surface of the samples. The frequency–temperature dependence of dielectric and electric properties was studied by use of dielectric and complex impedance spectroscopy over a wide range of frequency (1 kHz to 1 MHz) at different temperatures (25–500°C). The dielectric constant of BiFeO3 (BFO) was enhanced by substitution with Pb(Zr0.5Ti0.5)O3 (PZT) whereas the dielectric loss of the BPFZTO compounds decreased with increasing PZT content. A significant contribution of both grains and grain boundaries to the electrical response of the materials was observed. The frequency-dependence of the ac conductivity of BPFZTO followed Jonscher’s power law. Negative temperature coefficient of resistance behavior was observed for all the BPFZTO samples. Conductivity by thermally excited charge carriers and oxygen vacancies in the materials was believed to be of the Arrhenius-type.
机译:通过高温固相反应制备x = 0.0、0.2、0.3和0.4的Bi1-x Pb x Fe1-x(Zr0.5Ti0.5)x O3(BPFZTO)的多晶样品。通过使用X射线粉末衍射对材料的煅烧粉末进行初步结构分析,证实了具有四方结构的单相体系的形成。样品的室温扫描电子显微照片显示出低孔隙度颗粒的均匀分布和样品表面上的不同尺寸。通过在不同温度(25–500°C)下的宽频率范围(1kHz至1MHz)中使用介电和复阻抗谱研究了介电和电特性在频率-温度方面的依赖性。通过用Pb(Zr0.5Ti0.5)O3(PZT)代替,BiFeO3(BFO)的介电常数得以提高,而BPFZTO化合物的介电损耗随PZT含量的增加而降低。观察到晶粒和晶界对材料的电响应的显着贡献。 BPFZTO的交流电导率与频率的关系遵循Jonscher的幂定律。所有BPFZTO样品的电阻行为温度系数均为负值。材料中的热激发电荷载流子和氧空位的电导率被认为是Arrhenius型的。

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