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Magneto-structural correlations in rare-earth cobalt pnictides.

机译:稀土钴化物的磁结构相关性。

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摘要

Magnetic materials are used in many applications such as credit cards, hard drives, electric motors, sensors, etc. Although a vast range of magnetic solids is available for these purposes, our ability to improve their efficiency and discover new materials remains paramount to the sustainable progress and economic profitability in many technological areas. The search for magnetic solids with improved performance requires fundamental understanding of correlations between the structural, electronic, and magnetic properties of existing materials, as well as active exploratory synthesis that targets the development of new magnets. Some of the strongest permanent magnets, Nd 2Fe14B, SmCo5, and Sm2Co17, combine transition and rare-earth metals, benefiting from the strong exchange between the 4f and 3d magnetic sublattices. Although these materials have been studied in great detail, the development of novel magnets requires thorough investigation of other 3d-4 f intermetallics, in order to gain further insights into correlations between their crystal structures and magnetic properties.;Among many types of intermetallic materials, ternary pnictides RCo 2Pn2 (R = La, Ce, Pr, Nd; Pn = P, As) are of interest because, despite their simple crystal structures, they contain two magnetic sublattices, exchange interactions between which may lead to rich and unprecedented magnetic behavior. Nevertheless, magnetism of these materials was studied only to a limited extent, especially as compared to the extensive studies of their silicide and germanide analogues. The ThCr2Si2 structure type, to which these ternary pnictides belong, is one of the most ubiquitous atomic arrangements encountered among intermetallic compounds. It accounts for over 1000 known intermetallics and has received increased attention due to the recently discovered FeAs-based superconductors.;This dissertation is devoted to the investigation of magnetostructural relationships and anomalous magnetic behaviors in rare earth-cobalt pnictides with the ThCr2Si2 structure type, as well as to the development of new synthetic approaches to the preparation of such materials. We use iso- and aliovalent substitutions as effective tools to probe magnetostructural correlations and establish general trends in the magnetic behavior of RCo 2Pn2 phases. The modification of the electronic band structure, which correlates with the changes in the crystal structure of the material, is found to act as the driving force that dictates the magnetic properties of these itinerant systems. We demonstrate how this knowledge can be used effectively to achieve diverse magnetic properties and relate them to specific structural characteristics of materials.
机译:磁性材料被用于许多应用中,例如信用卡,硬盘驱动器,电动机,传感器等。尽管有大量的磁性固体可用于这些目的,但我们提高其效率和发现新材料的能力仍然对可持续发展至关重要。许多技术领域的进步和经济收益。要寻求具有更高性能的磁性固体,需要对现有材料的结构,电子和磁性之间的相关性有基本的了解,并需要针对新磁体开发的主动探索性合成。受益于4f和3d磁性亚晶格之间的强交换,一些最强的永磁体Nd 2Fe14B,SmCo5和Sm2Co17结合了过渡金属和稀土金属。尽管已经对这些材料进行了详细的研究,但新型磁体的开发仍需要对其他3d-4 f金属间化合物进行深入研究,以进一步了解其晶体结构与磁性之间的相关性。在许多类型的金属间材料中,三元磷化物RCo 2Pn2(R = La,Ce,Pr,Nd; Pn = P,As)是令人感兴趣的,因为尽管它们的晶体结构简单,但它们仍包含两个磁性亚晶格,它们之间的交换相互作用可能导致丰富且前所未有的磁性行为。然而,对这些材料的磁性仅进行了有限的研究,特别是与对其硅化物和锗化物类似物的广泛研究相比。这些三价肽属于的ThCr2Si2结构类型是金属间化合物中遇到的最普遍的原子排列之一。它占了1000多种已知的金属间化合物,并且由于最近发现的基于FeAs的超导体而受到了越来越多的关注。本论文致力于研究ThCr2Si2结构类型的稀土-钴金属化物的磁结构关系和异常磁行为。以及开发新的合成方法来制备这种材料。我们使用等价和异价取代作为探测磁结构相关性和建立RCo 2Pn2相磁行为的一般趋势的有效工具。发现电子能带结构的改变与材料的晶体结构的变化有关,该改变起决定这些巡回剂系统的磁性能的驱动力的作用。我们将展示如何有效地利用这些知识来实现​​各种磁性能,并将它们与材料的特定结构特征相关联。

著录项

  • 作者

    Thompson, Corey Mitchell.;

  • 作者单位

    The Florida State University.;

  • 授予单位 The Florida State University.;
  • 学科 Chemistry Inorganic.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 124 p.
  • 总页数 124
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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