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Synthesis and properties of transition-metal arsenide nanostructures: From superparamagnetism to superconductivity.

机译:过渡金属砷化物纳米结构的合成与性能:从超顺磁性到超导电性。

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摘要

This dissertation study focuses on developing new protocols for synthesis of nanostructured transition-metal pnictides including superconducting LiFeAs and studying their structure- property relationship. Nanostructured materials are known to differ in properties compared to their bulk counterparts owing to enhanced surface area and increased packing efficiency in devices. Synthetic chemistry skills and nanofabrication techniques like wet chemistry, electrodeposition, solvothermal, hydrothermal and lithography, are extremely useful for creating nanostructures of these functional materials. This is a challenging task simply because maintaining the phase composition same as that of the bulk material along with achieving nanostructures (nanoparticles, nanowires, nanopillars etc.) simultaneously is not easy. Papers I and II showcase novel synthesis methods for E based pnictides [EPn where E = 1st row transition elements and Pn = P, As etc.]. The superparamagnetism of transition-metal pnictides (e.g. FeAs, CoAs) nanomaterials obtained by this method have interesting magnetic features like high blocking temperatures and inter-particle magnetic exchange. Paper III, shows the concept of generalized protocol of EAs synthesis and discusses the principles behind this method. This protocol has been tested for applicability to not only FeAs, but also MnAs, CoAs and CrAs systems. Generalization of this method along with the discovery of superparamagnetic behavior in FeAs is one of the key findings of this research work. Alongside, paper IV shows the formation of Co3O4 nanowires through solid-solid conversion route aided by sacrificial templates.
机译:本论文的研究重点是开发包括超导LiFeAs在内的纳米结构过渡金属肽的合成新方案,并研究其结构与性质的关系。已知纳米结构材料由于其表面积增加和装置中的包装效率提高而与其本体相比具有不同的性能。合成化学技能和纳米制造技术(如湿化学,电沉积,溶剂热,水热和光刻)对于创建这些功能材料的纳米结构非常有用。仅仅因为保持与本体材料的相组成以及同时获得纳米结构(纳米颗粒,纳米线,纳米柱等)并不容易,这是一项艰巨的任务。论文I和II展示了基于E的肽的新颖合成方法[EPn,其中E =第一行过渡元素,Pn = P,As等。通过这种方法获得的过渡金属离子化物(例如FeAs,CoAs)纳米材料的超顺磁性具有令人感兴趣的磁性特征,例如高阻断温度和粒子间磁性交换。论文三展示了EA合成的通用协议的概念,并讨论了该方法的原理。已经对该协议进行了测试,不仅适用于FeAs,还适用于MnAs,CoAs和CrAs系统。该方法的推广以及在FeAs中超顺磁行为的发现是这项研究工作的主要发现之一。同时,论文IV显示了在牺牲模板的帮助下,通过固-固转化路径形成了Co3O4纳米线。

著录项

  • 作者

    Desai, Prachi.;

  • 作者单位

    Missouri University of Science and Technology.;

  • 授予单位 Missouri University of Science and Technology.;
  • 学科 Molecular chemistry.;Nanoscience.;Inorganic chemistry.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 153 p.
  • 总页数 153
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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