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Solid Electrolyte Materials for use in Lithium-water Primary Batteries And the Synthesis and Characterization of Lanthanide Orthoferrite Magnetic Nanomaterials.

机译:用于锂水一次电池的固体电解质材料以及镧系元素正铁氧体磁性纳米材料的合成与表征。

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摘要

This thesis was developed in two parts with the overall goals of this work being (1) synthesize and develop solid electrolyte materials for use in a lithium-water battery and (2) synthesize and characterize ternary magnetic nanomaterials.;Lithium metal in combination with water is a highly attractive power source due to its high specific energy. Because of the vigorous nature of the reaction between lithium and water, many obstacles must be overcome in order to harness the energy that this system is capable of producing. Parasitic reactions must be controlled so as not to passivate the lithium or consume it totally. In addition, production of hydrogen gas that accompanies both the electrochemical and parasitic reactions can present a serious challenge. As a result it is difficult to maintain high voltage and control the current density in these systems. In order to overcome these obstacles we have developed composite membranes of various lithium-ion conducting solid electrolytes and polymers. Lithium-ion conducting solid electrolytes are known to achieve ionic conductance as high as 10-3 S/cm2. Utilizing these materials in conjunction with polymers, we have created hydrophobic membranes that allow us to limit the parasitic reactions and maintain low cell impedance.;Lanthanide orthoferrite materials are technologically important classes of magnetic materials. They have found application in magneto-optical devices as well as in magnetic recording devices. We have explored the syntheses and magnetic properties of nanocrystalline materials. The synthesis of the nanomaterials was done by co-reduction of lanthanide, Ln3+, and iron, Fe 3+, cations with alkalide solution producing the Ln-Fe alloy of the desired stoichiometry. Removal of the byproducts and oxidization of the alloy was accomplished by washing the product with aerated water. Presented herein, several nanoscale lanthanide orthoferrite materials (LnFeO3, Ln = Gd, Tb, Er, Tm, Sm, Dy, Ho, and La) have been prepared. The products have been characterized by X-ray Diffraction (XRD), Transmission Electron Microscopy (TEM), and magnetic properties characterized by use of a Superconducting Quantum Interference Device (SQUID).
机译:本论文分为两部分,其总体目标是:(1)合成和开发用于锂-水电池的固体电解质材料;(2)合成和表征三元磁性纳米材料。由于其高比能,它是一种极具吸引力的电源。由于锂和水之间反应的剧烈性质,必须克服许多障碍才能利用该系统能够产生的能量。必须控制寄生反应,以免钝化或完全消耗锂。另外,伴随电化学反应和寄生反应的氢气的产生会带来严重的挑战。结果,在这些系统中难以维持高压并控制电流密度。为了克服这些障碍,我们开发了各种锂离子传导固体电解质和聚合物的复合膜。已知传导锂离子的固体电解质可实现高达10-3 S / cm2的离子传导率。通过将这些材料与聚合物结合使用,我们创建了疏水膜,从而使我们能够限制寄生反应并保持较低的电池阻抗。;镧系元素正铁氧体材料是技术上重要的一类磁性材料。他们发现它们已应用于磁光设备以及磁记录设备中。我们已经探索了纳米晶体材料的合成和磁性。纳米材料的合成是通过将镧系元素Ln3 +和铁,Fe 3+阳离子与碱溶液共还原而完成的,从而生产出所需化学计量的Ln-Fe合金。副产物的去除和合金的氧化是通过用充气水洗涤产物来完成的。本文介绍了几种纳米级镧系元素正铁氧体材料(LnFeO3,Ln = Gd,Tb,Er,Tm,Sm,Dy,Ho和La)。产品的特征在于X射线衍射(XRD),透射电子显微镜(TEM)和磁性能,其特征在于使用超导量子干涉仪(SQUID)。

著录项

  • 作者

    Cook, Clifford Corlin.;

  • 作者单位

    The George Washington University.;

  • 授予单位 The George Washington University.;
  • 学科 Chemistry Inorganic.;Chemistry Physical.;Engineering Materials Science.;Chemistry Organic.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 226 p.
  • 总页数 226
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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