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Effects of interfaces and preferred orientation on the electrical response of composites of alumina and silicon carbide whiskers.

机译:界面和优选取向对氧化铝和碳化硅晶须复合材料电响应的影响。

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摘要

Ceramic-matrix composites of alumina and silicon carbide whiskers have recently found novel commercial application as electromagnetic absorbers. However, a detailed understanding of how materials issues influence the composite electrical response which underpins this application has been absent until now. In this project, such composites were electrically measured over a wide range of conditions and modeled in terms of various aspects of the microstructure in order to understand how they work. For this purpose, three types of composites were made by different methods from the same set of ceramic powder blends loaded with different volume fractions of whiskers. In doing so, the interfaces between whiskers, the preferred orientations of whiskers, and the structure of electrically-connected whisker clusters were varied.;In Chapter 3, it shown that Schottky energy barriers form at the junctions of the wide-bandgap semiconductor whiskers when metal electrodes are applied for measurements. These barriers were characterized on the microscopic and macroscopic level, and the gap between these different scales was bridged. Also, a modeling approach was developed for the loading dependence of the composite non-linear response which results from the barriers. In Chapter 4, the effects of significantly different types of preferred orientation are elucidated and a strong structure-property correlation is established. The effects of other structural issues on the electrical response are uncovered as well, such as those pertaining to porosity in the ceramic and the interfaces between electrically-connected SiCw. In Chapter 5, the non-linear response model of Chapter 3 is adapted in the development of a new model for electrically-percolated clusters. This model demonstrates how loading and interfacial issues influence the cluster topology and may result in the cluster having a non-linear electrical response. In Chapter 6, the effects of various factors on the broadband frequency dependence of the electrical response are explained and then contextualized for the electromagnetic absorber application. Such factors include whisker orientation, percolation, cluster structure, and interfaces. Finally, in Chapter 7, it is demonstrated that the interwhisker interfacial conduction mechanism differs from those which have been previously reported for other disordered mixtures of relatively conductive particles dispersed inside insulating polymer hosts. A new model for the interfacial conduction mechanism is then developed, which connects the temperature dependencies of the static- and radio-frequency electrical response and helps explain the aforementioned structure-property correlation.
机译:氧化铝和碳化硅晶须的陶瓷基复合材料最近发现了作为电磁吸收剂的新型商业应用。但是,到目前为止,还没有对材料问题如何影响构成该应用程序的复合电响应的详细了解。在该项目中,对此类复合材料在各种条件下进行了电测量,并根据微观结构的各个方面进行了建模,以了解它们的工作原理。为了这个目的,通过不同的方法,从装载有不同体积分数的晶须的同一组陶瓷粉末共混物中制备三种类型的复合材料。这样做,晶须之间的界面,晶须的首选取向以及电连接的晶须簇的结构都发生了变化。;在第3章中,表明了当宽禁带半导体晶须在结点处形成肖特基能垒。应用金属电极进行测量。这些障碍在微观和宏观层面上都得到了表征,并且缩小了这些不同尺度之间的差距。此外,针对障碍产生的复合非线性响应的载荷依赖性开发了一种建模方法。在第4章中,阐明了不同类型的首选方向的影响,并建立了牢固的结构-特性相关性。还发现了其他结构问题对电响应的影响,例如那些与陶瓷中的孔隙率以及电连接的SiCw之间的界面有关的问题。在第5章中,对第3章的非线性响应模型进行了修改,以开发用于电渗透簇的新模型。该模型演示了载荷和界面问题如何影响簇拓扑,并可能导致簇具有非线性电响应。在第6章中,将解释各种因素对电响应的宽带频率依赖性的影响,然后针对电磁吸收器的应用情况进行背景说明。这些因素包括晶须取向,渗滤,簇结构和界面。最后,在第7章中,证明晶须间的界面传导机理与先前报道的分散在绝缘聚合物主体中的其他相对传导性颗粒的无序混合物不同。然后,开发了一种用于界面传导机制的新模型,该模型连接了静态和射频电响应的温度依赖性,并有助于解释上述结构-特性的相关性。

著录项

  • 作者

    Bertram, Brian D.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Physics Electricity and Magnetism.;Engineering Materials Science.;Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 304 p.
  • 总页数 304
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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