Yang Jing, Bai Wei, Zhang Yuanyuan, Duan Chun-Gang, Chu Junhao, Tang Xiaodong
Key Laboratory of Polar Materials and Devices, Ministry of Education, Department of Electronics, East China Normal University, Shanghai 200241, People's Republic of China.
Chongqing Key Laboratory of Precision Optics, Chongqing Institute of East China Normal University, Chongqing 401120, People's Republic of China.
J Phys Condens Matter. 2023 Aug 23;35(46). doi: 10.1088/1361-648X/acecf0.
In this review, an overview of acoustic- and radio-frequency frequency dielectric properties of multiferroic oxides, the significant dynamic response of electrical polarization to small external ac electrical fields, are present based on the reports in literatures and our recent experimental progresses. The review is begun with some basic terms, concepts and mechanisms associated with dielectric response and dielectric anomalies, namely dielectric peak and plateau upon varying temperatures and dielectric relaxations upon varying frequencies. Subsequently, a variety of quantitative analyses and descriptions of various dielectric effects, including dielectric relaxation, relaxational and transport dynamics, ac conductivity, equivalent circuit models and impedance spectroscopy, are summarized in details. Next is the kernel section. We thoroughly outline various physical mechanisms behind acoustic-/radio-frequency dielectric responses and anomalies of multiferroic oxides. Spin order transition/spin rotation, charge disorder-order transition, exchange striction of the spin interactions, spin-dependenthybridization mechanism, quantum electric-dipole liquids, the interaction of spin order and quantum paraelectric, the motions of charged defects and carriers, quasi-intrinsic and extrinsic heterogeneous interfaces, polar relaxor and multiglass, ferroic domain wall/boundary motions, etc, are involved in these mechanisms. Meanwhile, particular emphasis is placed on intrinsic or extrinsic magnetodielectric effects and related mechanisms in multiferroic oxides. Finally, the review ends with a short perspective of future dielectric research in multiferroic oxides. This review is able to provide the detailed and unique insights into abundant underlying fundamental physics in multiferroic oxides as well as the potential multiferroics-based technological applications.
在本综述中,基于文献报道和我们最近的实验进展,对多铁性氧化物的声学和射频介电特性进行了概述,即电极化对小外部交流电场的显著动态响应。综述从一些与介电响应和介电异常相关的基本术语、概念和机制开始,即在温度变化时的介电峰和平台以及在频率变化时的介电弛豫。随后,详细总结了各种介电效应的多种定量分析和描述,包括介电弛豫、弛豫和输运动力学、交流电导率、等效电路模型和阻抗谱。接下来是核心部分。我们全面概述了多铁性氧化物声学/射频介电响应和异常背后的各种物理机制。这些机制涉及自旋序转变/自旋旋转、电荷无序-有序转变、自旋相互作用的交换收缩、自旋相关杂化机制、量子电偶极液体、自旋序与量子顺电体的相互作用、带电缺陷和载流子的运动、准本征和非本征异质界面以及极性弛豫体和多玻璃、铁电畴壁/边界运动等。同时,特别强调了多铁性氧化物中的本征或非本征磁电效应及相关机制。最后综述以对多铁性氧化物未来介电研究的简短展望结束。本综述能够为多铁性氧化物中丰富的潜在基础物理以及基于多铁性的潜在技术应用提供详细而独特的见解。