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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 >Oxygen-vacancy and charge hopping related dielectric relaxation and conduction process in orthorhombic Gd doped YFe0.6Mn0.4O3 multiferroics
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Oxygen-vacancy and charge hopping related dielectric relaxation and conduction process in orthorhombic Gd doped YFe0.6Mn0.4O3 multiferroics

机译:正交晶G掺杂YFe0.6Mn0.4O3多铁中氧空位和电荷跳跃相关的介电弛豫和导电过程

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摘要

The temperature dependent dielectric relaxation and conduction mechanism of multiferroic Y1- xGdxFe0.6Mn0.4O3 (0 <= x <= 0.8) systems have been investigated by dielectric measurements and impedance spectroscopy study in the temperature range of 150-550 K. We have observed that the charge carrier hopping (with activation energy of 0.18-0.4 eV) and doubly ionized oxygen vacancy Vo(..) (activation energy of 0.4-0.6 eV) are mainly responsible for conduction mechanism in the systems. Conducting charge-relaxation-mode interaction may be the plausible reason for high dielectric constant in the samples. The XPS analysis reveals that the valence states of the Mn and Fe ions are tuned between Mn3+/Mn4+ and Fe3+/Fe2+ states depending upon the change in oxygen vacancy with different Gd concentrations. The activation energy increases with increase in Gd content revealing the increased oxygen vacancy concentration with increasing Gd content in high temperature region. The relaxation process is dominated by the short range hopping of charge carriers resulting in a departure from ideal Debye-like behavior. The samples possess two different conduction mechanisms that have different activation energies above and below their spin reorientation transition temperature. (C) 2014 Elsevier B.V. All rights reserved.
机译:通过介电测量和阻抗谱研究在150-550 K的温度范围内研究了多铁性Y1-xGdxFe0.6Mn0.4O3(0 <= x <= 0.8)系统随温度变化的介电弛豫和导电机理。我们已经观察到电荷载流子的跃迁(活化能为0.18-0.4 eV)和双电离氧空位Vo(。)(活化能为0.4-0.6 eV)主要负责系统中的传导机制。进行电荷-松弛-模式相互作用可能是样品中高介电常数的合理原因。 XPS分析表明,Mn和Fe离子的化合价状态可根据不同Gd浓度下氧空位的变化在Mn3 + / Mn4 +和Fe3 + / Fe2 +状态之间进行调节。活化能随Gd含量的增加而增加,揭示出高温区氧含量随Gd含量的增加而增加。弛豫过程以电荷载子的短程跳跃为主导,导致偏离理想的类似德拜的行为。样品具有两种不同的传导机制,在其自旋重取向转变温度之上和之下具有不同的活化能。 (C)2014 Elsevier B.V.保留所有权利。

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