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Microstructural Characterization of Base Metal Alloys with Conductive Native Oxides for Electrical Contact Applications.

机译:用于电接触应用的具有导电天然氧化物的贱金属合金的微观结构表征。

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摘要

Metallic contacts are a ubiquitous method of connecting electrical and electronic components/systems. These contacts are usually fabricated from base metals because they are inexpensive, have high bulk electrical conductivities and exhibit excellent formability. Unfortunately, such base metals oxidize in air under ambient conditions, and the characteristics of the native oxide scales leads to contact resistances orders of magnitude higher than those for mating bare metal surface. This is a critical technological issue since the development of unacceptably high contact resistances over time is now by far the most common cause of failure in electrical/electronic devices and systems. To overcome these problems, several distinct approaches are developed for alloying base metals to promote the formation of self-healing inherently conductive native oxide scales. The objective of this dissertation study is to demonstrate the viability of these approaches through analyzing the data from Cu-9La (at%) and Fe-V binary alloy systems. The Cu-9 La alloy structure consists of eutectic colonies tens of microns in diameter wherein a rod-like Cu phase lies within a Cu6La matrix phase. The thin oxide scale formed on the Cu phase was found to be Cu2O as expected while the thicker oxide scale formed on the Cu6La phase was found to be a polycrystalline La-rich Cu2O. The enhanced electrical conductivity in the native oxide scale of the Cu-9La alloy arises from heavy n-type doping of the Cu2O lattice by La3+. The Fe-V alloy structures consist of a mixture of large elongated and equiaxed grains. A thin polycrystalline Fe3O4 oxide scale formed on all of the Fe-V alloys. The electrical conductivities of the oxide scales formed on the Fe-V alloys are higher than that formed on pure Fe. It is inferred that this enhanced conductivity arises from doping of the magnetite with V+4 which promotes electron-polaron hopping. Thus, it has been demonstrated that even in simple binary alloy systems one can obtain a dramatic reduction in the contact resistances of alloy oxidized surfaces as compared with those of the pure base metals.
机译:金属触点是连接电气和电子组件/系统的普遍方法。这些触点通常由贱金属制成,因为它们价格便宜,具有高的整体电导率并具有出色的可成型性。不幸的是,这种贱金属在环境条件下会在空气中氧化,并且天然氧化皮的特性导致接触电阻比配合裸金属表面的接触电阻高几个数量级。这是一个关键的技术问题,因为随着时间的推移,出现不可接受的高接触电阻是目前电气/电子设备和系统中最常见的故障原因。为了克服这些问题,开发了几种不同的方法来使贱金属合金化,以促进自愈的固有导电天然氧化皮的形成。本论文的研究目的是通过分析来自Cu-9La(at%)和Fe-V二元合金系统的数据来证明这些方法的可行性。 Cu-9La合金结构由直径为数十微米的共晶菌落组成,其中棒状Cu相位于Cu6La基体相内。如所预期的,发现在Cu相​​上形成的薄的氧化皮为Cu 2 O,而在Cu 6 La相上形成的较厚的氧化皮为富含多晶La的Cu 2O。 Cu-9La合金的固有氧化物级中增强的电导率归因于La3 +对Cu2O晶格的重n型掺杂。 Fe-V合金结构由大的细长和等轴晶粒的混合物组成。在所有的Fe-V合金上形成了一层薄的多晶Fe3O4氧化皮。在Fe-V合金上形成的氧化皮的电导率高于在纯Fe上形成的氧化皮的电导率。可以推断,这种增强的电导率是由于磁铁矿中掺入了V + 4,从而促进了电子极化子跳跃。因此,已经证明,即使在简单的二元合金体系中,与纯贱金属相比,也能使合金氧化表面的接触电阻大大降低。

著录项

  • 作者

    Senturk, Bilge Seda.;

  • 作者单位

    University of Connecticut.;

  • 授予单位 University of Connecticut.;
  • 学科 Engineering Materials Science.;Chemistry Inorganic.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 152 p.
  • 总页数 152
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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