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Magnetoelectric and multiferroic properties in layered 3D transition metal oxides.

机译:层状3D过渡金属氧化物的磁电和多铁性。

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摘要

Functional ferroelectric and magnetic materials have played an important role of modern technology in the sensor or storage device industries. Ferroelectricity and ferromagnetism emerge from different origins. However, it is discovered that these two seemingly unrelated phenomena can actually coexist in materials called multiferroics. Since current trends toward device miniaturization have increased interests in combining electronic and magnetic properies into multifunctional materials, multiferroics have attracted great attention. Ferromagnetic ferroelectric multiferroics are especially fascinating not only because they have both ferroic properties, but also because of the magnetoelectric coupling which leads the interaction between the magnetic and electric polarization. Recent theoretical breakthroughs in understanding the coexistence of magnetic and electrical ordering have regenerated a great interests in research of such magnetoelectric multiferroics. The long-sought control of electric polarization by magnetic fields was recently discovered in 'frustrated magnets', for example the perovskites RMnO3, RMn 2O5 (R: rare earth elements), Ni3V 2O8, delafossite CuFeO2, spinel CoCr2O 4, MnWO4, etc.;In this dissertation, I have explored several magnetoelectric materials and multiferroics, which show significant magnetoelectric interactions between electric and magnetic orderings. The objects of my projects are focused on understanding the origins of such magnetoelectric couplings and establishing the magnetic/electric phase diagrams and the spin structures. I believe that my works would help to understand the mechanisms of magnetoelectric effects and multiferroics.
机译:功能性铁电和磁性材料在传感器或存储设备行业中起着现代技术的重要作用。铁电和铁磁性来自不同的起源。但是,发现这两个看似无关的现象实际上可以共存于称为多铁性物质的材料中。由于当前器件小型化的趋势已引起人们越来越多的兴趣,即将电子和磁性材料组合到多功能材料中,因此多铁性材料引起了极大的关注。铁磁铁电多铁磁不仅特别具有吸引力,还因为它们既具有铁电特性,又因为磁电耦合导致了磁极化和电极化之间的相互作用。在理解磁序和电序共存方面的最新理论突破引起了人们对这种磁电多铁学研究的极大兴趣。最近,人们在``沮丧的磁体''中发现了通过磁场长期寻求控制极化的方法,例如钙钛矿RMnO3,RMn 2O5(R:稀土元素),Ni3V 2O8,铜铁矿CuFeO2,尖晶石CoCr2O 4,MnWO4等。 ;在本文中,我探索了几种磁电材料和多铁磁材料,这些材料显示出电有序和磁有序之间显着的磁电相互作用。我项目的目标集中在理解此类磁电耦合的起源以及建立磁/电相图和自旋结构。我相信我的工作将有助于理解磁电效应和多铁磁的机理。

著录项

  • 作者

    Hwang, Jungmin.;

  • 作者单位

    The Florida State University.;

  • 授予单位 The Florida State University.;
  • 学科 Chemistry Inorganic.;Engineering Materials Science.;Physics Condensed Matter.;Physics General.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 162 p.
  • 总页数 162
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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