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Decoding the Fingerprint of Ferroelectric Loops: Comprehension of the Material Properties and Structures

机译:解码铁电回路的指纹:对材料特性和结构的理解

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摘要

Due to the nature of domains, ferroics, including ferromagnetic, ferroelectric, and ferroelastic materials, exhibit hysteresis phenomena with respect to external driving fields (magnetic field, electric field, or stress). In principle, every ferroic material has its own hysteresis loop, like a fingerprint, which contains information related to its properties and structures. For ferroelec-trics, many characteristic parameters, such as coercive field, spontaneous, and remnant polarizations can be directly extracted from the hysteresis loops. Furthermore, many impact factors, including the effect of materials (grain size and grain boundary, phase and phase boundary, doping, anisotropy, thickness), aging (with and without poling), and measurement conditions (applied field amplitude, fatigue, frequency, temperature, stress), can affect the hysteretic behaviors of the ferroelectrics. In this feature article, we will first give the background of the ferroic materials and multiferroics, with an emphasis on ferroelectrics. Then it is followed by an introduction of the characterizing techniques for the loops, including the polarization-electric field loops and strain-electric field curves. A caution is made to avoid misinterpretation of the loops due to the existence of conductivity. Based on their morphologic features, the hysteresis loops are categorized to four groups and the corresponding material usages are introduced. The impact factors on the hysteresis loops are discussed based on recent developments in ferroelectric and related materials. It is suggested that decoding the fingerprint of loops in ferroelectrics is feasible and the comprehension of the material properties and structures through the hysteresis loops is established.
机译:由于磁畴的性质,包括铁磁,铁电和铁弹性材料在内的铁磁体相对于外部驱动场(磁场,电场或应力)表现出磁滞现象。原则上,每种铁性材料都有其自己的磁滞回线,例如指纹,其中包含与其性质和结构有关的信息。对于铁电体,可以直接从磁滞回线中提取许多特征参数,例如矫顽场,自发极化和剩余极化。此外,还有许多影响因素,包括材料(晶粒尺寸和晶界,相和相界,掺杂,各向异性,厚度),时效(有无极化)和测量条件(施加的场幅,疲劳,频率,温度,应力)会影响铁电体的磁滞行为。在这篇专题文章中,我们将首先介绍铁磁材料和多铁磁的背景,重点是铁电学。然后,介绍了环路的表征技术,包括极化电场环路和应变电场曲线。请注意避免由于电导率的存在而误解回路。根据其形态特征,将磁滞回线分为四类,并介绍了相应的材料用法。基于铁电材料和相关材料的最新发展,讨论了对磁滞回线的影响因素。建议对铁电体中的环的指纹进行解码是可行的,并建立了通​​过磁滞回线对材料特性和结构的理解。

著录项

  • 来源
    《Journal of the American Ceramic Society》 |2014年第1期|1-27|共27页
  • 作者

    Li Jin; Fei Li; Shujun Zhang;

  • 作者单位

    Electronic Materials Research Laboratory, Key Laboratory of the Ministry of Education and International Center for Dielectric Research, Xi'an Jiaotong University, Xi'an 710049, China;

    Electronic Materials Research Laboratory, Key Laboratory of the Ministry of Education and International Center for Dielectric Research, Xi'an Jiaotong University, Xi'an 710049, China;

    Materials Research Institute, Pennsylvania State University, University Park, Pennsylvania 16802;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 13:36:52

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