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Geometric frustration in compositionally modulated ferroelectrics

机译:成分调制铁电体的几何受挫

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摘要

Geometric frustration is a broad phenomenon that results from an intrinsic incompatibility between some fundamental interactions and the underlying lattice geometry. Geometric frustration gives rise to new fundamental phenomena and is known to yield intriguing effects such as the formation of exotic states like spin ice, spin liquids and spin glasses. It has also led to interesting findings of fractional charge quantization and magnetic monopoles. Mechanisms related to geometric frustration have been proposed to understand the origins of relaxor and multiferroic behaviour, colossal magneto-capacitive coupling, and unusual and novel mechanisms of high-transition-temperature superconductivity. Although geometric frustration has been particularly well studied in magnetic systems in the past 20 years or so, its manifestation in the important class formed by ferroelectric materials (which are compounds with electric rather than magnetic dipoles) is basically unknown. Here we show, using a technique based on first principles, that compositionally graded ferroelectrics possess the characteristic 'fingerprints' associated with geometric frustration. These systems have a highly degenerate energy surface and display critical phenomena. They further reveal exotic orderings with novel stripe phases involving complex spatial organization. These stripes display spiral states, topological defects and curvature. Compositionally graded ferroelectrics can thus be considered the 'missing link' that brings ferroelectrics into the broad category of materials able to exhibit geometric frustration. Our ab initio calculations allow deep microscopic insight into this novel geometrically frustrated system.
机译:几何挫折是一种广泛的现象,它是由某些基本相互作用和底层晶格几何结构之间固有的不兼容引起的。几何上的挫折引起了新的基本现象,并且众所周知会产生有趣的效果,例如形成奇特的状态,如自旋冰,自旋液体和自旋玻璃。它还导致了分数电荷量化和磁单极子的有趣发现。已经提出了与几何挫折有关的机制,以了解弛豫器和多铁性行为的起源,巨大的磁电容耦合以及高转变温度超导的不寻常且新颖的机制。尽管在过去的20年左右的时间里,对磁性系统中的几何挫折问题进行了特别深入的研究,但是在由铁电材料(具有电偶极子而不是磁偶极子的化合物)形成的重要类别中,其几何形式的表现基本上是未知的。在这里,我们显示,使用基于第一原理的技术,成分渐变铁电体具有与几何挫折相关的特征“指纹”。这些系统具有高度退化的能量表面并显示关键现象。他们进一步揭示了具有复杂空间组织的新颖条纹阶段的奇异顺序。这些条纹显示出螺旋状态,拓扑缺陷和曲率。因此,可以将成分分级的铁电材料视为“缺失环节”,从而使铁电材料成为能够表现出几何挫折感的材料的广泛类别。我们的从头算起可以让您深入了解这种新颖的几何受挫系统。

著录项

  • 来源
    《Nature》 |2011年第7335期|p.513-517|共5页
  • 作者单位

    Department of Physics, University of Arkansas, Fayetteville, Arkansas 72701, USA;

    Engineer Research and Development Center, Vicksburg, Mississippi 39180, USA;

    Department of Physics, University of South Florida, Tampa, Florida 33620, USA;

    Department of Physics, University of Arkansas, Fayetteville, Arkansas 72701, USA;

  • 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);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 02:54:29

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