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钴锌铁氧体磁相变温度附近的介电、电学和磁学性质的相关性

Correlation of dielectric, electrical and magnetic properties near the magnetic phase transition temperature of cobalt zinc ferrite.

作者信息

Pradhan Dhiren K, Kumari Shalini, Puli Venkata S, Das Proloy T, Pradhan Dillip K, Kumar Ashok, Scott J F, Katiyar Ram S

机构信息

Department of Physics and Institute of Functional Nanomaterials, University of Puerto Rico, San Juan-00936, PR, USA.

Department of Physics and Engineering Physics, Tulane University, New Orleans, LA-70118, USA.

出版信息

Phys Chem Chem Phys. 2016 Dec 21;19(1):210-218. doi: 10.1039/c6cp06133h.

Abstract

Multiferroic composite structures, i.e., composites of magnetostrictive and piezoelectric materials, can be envisioned to achieve the goal of strong room-temperature ME coupling for real practical device applications. Magnetic materials with high magnetostriction, high Néel temperature (T), high resistivity and large magnetization are required to observe high ME coupling in composite structures. In continuation of our investigations on suitable magnetic candidates for multiferroic composite structures, we have studied the crystal structure, dielectric, transport, and magnetic properties of CoZnFeO (CZFO). Rietveld refinement of X-ray diffraction patterns confirms the phase purity with a cubic crystal structure with the (Fd3[combining macron]m) space group; however, we have found a surprisingly large magneto-dielectric anomaly at the Néel temperature, unexpected for a cubic structure. The presence of mixed valences of Fe/Fe cations is probed by X-ray photoelectron spectroscopy (XPS), which supports the catonic ordering-mediated large dielectric response. Large dielectric permittivity dispersion with a broad anomaly is observed in the vicinity of the magnetic phase transition temperature (T) of CZFO suggesting a strong correlation between dielectric and magnetic properties. The evidence of strong spin-polaron coupling has been established from temperature dependent dielectric, ac conductivity and magnetization studies. The ferrimagnetic-paramagnetic phase transition of CZFO has been found at ∼640 K, which is well above room temperature. CZFO exhibits low loss tangent, a high dielectric constant, large magnetization with soft magnetic behavior and magnetodielectric coupling above room temperature, elucidating the possible potential candidates for multiferroic composite structures as well as for multifunctional and spintronics device applications.

摘要

多铁性复合结构,即磁致伸缩材料与压电材料的复合材料,有望实现强室温磁电耦合,以满足实际器件应用的需求。为了在复合结构中实现高磁电耦合,需要具有高磁致伸缩、高奈尔温度(T)、高电阻率和大磁化强度的磁性材料。在继续研究适用于多铁性复合结构的磁性候选材料的过程中,我们研究了CoZnFeO(CZFO)的晶体结构、介电、输运和磁性。X射线衍射图谱的Rietveld精修证实了其具有立方晶体结构(空间群为Fd3[组合宏]m)的相纯度;然而,我们发现在奈尔温度下存在一个惊人的大磁电异常,这对于立方结构来说是出乎意料的。通过X射线光电子能谱(XPS)探测了Fe/Fe阳离子的混合价态,这支持了阳离子有序介导的大介电响应。在CZFO的磁相变温度(T)附近观察到具有宽异常的大介电常数色散,表明介电和磁性之间存在强相关性。通过温度依赖的介电、交流电导率和磁化研究,证实了强自旋极化子耦合的证据。已发现CZFO的亚铁磁-顺磁相变温度约为640 K,远高于室温。CZFO表现出低损耗正切、高介电常数、具有软磁行为的大磁化强度以及室温以上的磁电耦合,阐明了其作为多铁性复合结构以及多功能和自旋电子器件应用的潜在候选材料。

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