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A magnetism-based approach to examining spin-orbit coupling effects in solid systems of isolated iridium octahedra.

机译:基于磁性的方法来检查孤立铱八面体的固体系统中的自旋-轨道耦合效应。

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摘要

This thesis explores the relative strengths of Spin-Orbit Coupling (SOC) in several perovskite-like systems that feature uninterrupted arrays of isolated IrO6 octahedra. Iridate compounds are particularly interesting to the community due to their relevance to emergent material properties such as insulating antiferromagnets, superconductors, and topological insulators. Recently literature has pointed to a complex interaction between SOC and crystal field splitting (CFS) in d5 metals. I utilize a straightforward, magnetic approach to determine the relative strengths of SOC vs CFS by chemically modifying structure and oxidation state. This contrasts with other work where advanced spectroscopic measurements are utilized to probe energy levels within a single compound. The focus of this study lies in two main methodologies: 1) Tracking the evolution of the Ir magnetic moment on progressing from 5 d5 Ir4+ to 5d 4 Ir5+ oxidation states that are clearly best described by a transition from a J=1/2 to a J=0 Ir magnetic state. In these cases, the evolution of the magnetic susceptibility shows the dominance of spin-orbit coupling in determining the magnetic properties of a material with highly isolated IrO6 octahedra. 2) Distorting J=0 Ir5+ systems where there is no emergence of an enhanced magnetic moment in the series on increasing the structural distortions, as would have been the case for significant crystal field splitting that reinforces the notion that spin-orbit coupling is the dominant force in determining the magnetism of iridium-oxygen octahedra in perovskite-like structures. The organization of this thesis is as follows: Chapter 1 presents a brief introduction to solid-state chemistry, iridates, and magnetism. Chapter 2 is an overview of experimental methodology and instrumentation. Chapter 3, presents a study of tuning the oxidation state of a new structure type: SrxLa11-xIr4O24. Chapter 4 presents a structural tuning of the Ir5+ system: Ba 2-xSrxYIrO6. Finally, Chapter 5 provides a brief glimpse of the future of this new approach to studying this type of iridium-oxygen compounds.
机译:本文探讨了几种钙钛矿样系统中自旋轨道耦合(SOC)的相对强度,这些系统具有不间断的孤立IrO6八面体阵列。铱化合物由于其与新兴材料特性(例如绝缘反铁磁体,超导体和拓扑绝缘子)的相关性而引起了社区的特别兴趣。最近的文献指出,d5金属中SOC和晶体场分裂(CFS)之间存在复杂的相互作用。我采用一种简单的磁性方法,通过化学修饰结构和氧化态来确定SOC与CFS的相对强度。这与其他工作不同,在其他工作中,高级光谱测量用于探测单个化合物内的能级。这项研究的重点在于两种主要方法:1)跟踪从5 d5 Ir4 +到5d 4 Ir5 +氧化态进展的Ir磁矩的演化,用从J = 1/2到a的跃迁显然可以最好地描述J = 0 Ir磁性态。在这些情况下,磁化率的演变表明自旋轨道耦合在确定具有高度隔离的IrO6八面体的材料的磁性能中占主导地位。 2)扭曲J = 0 Ir5 +系统,在该系统中,在增加结构畸变的过程中没有出现增强的磁矩,正如重大晶体场分裂的情况一样,这种现象强化了自旋轨道耦合是主导的概念力决定钙钛矿状结构中八面体铱氧的磁性。本论文的结构如下:第一章简要介绍了固体化学,铱酸盐和磁性。第2章概述了实验方法和仪器。第3章介绍了调整新结构类型SrxLa11-xIr4O24的氧化态的研究。第4章介绍Ir5 +系统的结构调整:Ba 2-xSrxYIrO6。最后,第5章简要介绍了研究这种类型的铱氧化合物的新方法的未来。

著录项

  • 作者

    Phelan, Brendan F.;

  • 作者单位

    Princeton University.;

  • 授予单位 Princeton University.;
  • 学科 Inorganic chemistry.;Materials science.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 86 p.
  • 总页数 86
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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