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Trace explosive sensor devices based on semiconductor nanomaterials.

机译:跟踪基于半导体纳米材料的爆炸物传感器设备。

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摘要

This dissertation discusses an explosive sensing device based on semiconductor nanomaterials. Here, we mainly focus on two kinds of materials: titanium dioxide nanowires and silicon nanowires to detect explosive trace vapor. Herein, methods for the synthesis, fabrication, design of nanostructured sensing materials using low-cost hydrothermal process are present. In addition, the nanomaterials have been systemically tested on different explosive. The first part of dissertation is focused on the fabrication of TiO2(B) dominant nanowires and testing the response to explosives. It was found that the high porous TiO2(B) nanowires when mixed anatase TiO2, exhibit a very fast and highly sensitive response to nitro-containing explosives. The second part of dissertation has studied the basic sensing mechanism of TiO2(B) nanowire sensor to detect explosives. It shows the specific surface characteristics of TiO2 responsible for the nitro-containing explosives. This information is then used to propose a method using UV illumination to reduce the effect of water vapor on TiO2(B) nanowires. The third part discussed an explosive sensor based on silicon nanowires. We analyzed the mechanism of silicon nanowires to detect nitro-related explosive compounds. In order to further investigate the sensing mechanism of TiO2, the fourth part of dissertation studies the effect on sensor performance by using different crystal phases of TiO2, different microstructure of TiO2, surface modification of TiO2, and different kinds of nanostructured semiconductors such as ZnO nanowires, TiO2 coated ZnO nanowires, V2O5 nanowires, and CdS nanowires to detect explosives. It is found that only TiO2 related semiconductor shows good response to explosives.
机译:本文讨论了一种基于半导体纳米材料的爆炸物传感装置。在这里,我们主要关注两种材料:二氧化钛纳米线和硅纳米线,用于检测爆炸性痕量蒸汽。在此,提出了使用低成本水热法合成,制备,设计纳米结构传感材料的方法。另外,纳米材料已经在不同的炸药上进行了系统测试。论文的第一部分集中在TiO2(B)占主导地位的纳米线的制造和测试对爆炸物的反应。发现当混合锐钛矿型TiO2时,高孔隙度的TiO2(B)纳米线对含硝基炸药表现出非常快速和高度敏感的响应。论文的第二部分研究了TiO2(B)纳米线传感器探测爆炸物的基本传感机理。它显示了负责含硝基炸药的TiO2的比表面特性。然后,该信息用于提出使用紫外线照射以减少水蒸气对TiO2(B)纳米线的影响的方法。第三部分讨论了基于硅纳米线的爆炸传感器。我们分析了硅纳米线检测与硝基相关的爆炸性化合物的机制。为了进一步研究TiO2的传感机理,论文的第四部分研究了不同的TiO2晶相,不同的TiO2微观结构,TiO2的表面改性以及不同种类的纳米结构半导体(如ZnO纳米线)对传感器性能的影响。 ,涂覆TiO2的ZnO纳米线,V2O5纳米线和CdS纳米线以检测爆炸物。发现只有TiO2相关的半导体对爆炸物显示出良好的响应。

著录项

  • 作者

    Wang, Danling.;

  • 作者单位

    University of Washington.;

  • 授予单位 University of Washington.;
  • 学科 Engineering Electronics and Electrical.;Nanoscience.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 134 p.
  • 总页数 134
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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