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Synthesis, characterization and sensor applications of doped and mixed metal oxide nanowires.

机译:掺杂和混合金属氧化物纳米线的合成,表征和传感器应用。

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摘要

Various metallic nanowires were synthesized using template-assisted electrodeposition method, and by adjusting the chemical components in the plating solution, alloy or doped nanowires could be synthesized through co-deposition process. Metal oxide nanowires were obtained by thermally oxidizing the metallic nanowires into their corresponding metal oxide forms. Morphology of these metallic and metal oxide nanowires was characterized using optical microscope and scanning electron microscope (SEM). Elementary and crystalline analysis was conducted using energy dispersive X-ray (EDS) spectrum and X-ray diffraction (XRD). For integration purpose, dielectrophoresis (DEP) assembly was studied and adopted to nanowire system. This field effect based technique was later applied to align nanowires forming contacts with micro electrodes in sensor chip fabrication process. The sensor application of metal oxide nanowires has been investigated in a systematical and methodical manner. Both dynamic and static testing methods have been deployed to evaluate the sensor performance of different metal oxide nanowires.;Pure tin oxide nanowires were fabricated first to verify that for same sensing material, if made in the form of nanowire, it could outperform the conventional thickfilm/thin-film configuration in terms of sensitivity, response and recovery time. Then, inspired by this encouraging preliminary result, mixed tin-copper oxide nanowires were synthesized. Interesting morphology changes, i.e. rugged surfaces, of nanowires after thermal oxidation process were found as well as enhanced sensitivity comparing to pure tin oxide nanowire. Doped tin oxide nanowires provide another solution utilizing doping effect to improve the sensor performance. Catalytic dopant platinum, electroactive dopant copper, indium and nickel have been successfully introduced into tin oxide nanowires. These four types of doped tin oxide nanowires displayed not only good sensitivity and response kinetics, but also differences in selectivity. An array device that could accommodate up to four individual nanowire sensor units was developed to simultaneously gather testing data and feed to computer to build a data base. Principle component analysis (PCA) of this database further amplified the selectivity patterns of each doped tin oxide material and demonstrated this sensor array's ability of classifying chemical analyte.;In all, nanowires show many advantages such as a large variety in compositions, and capability of being efficiently assembled in a massive manner. The great potential of high surface-to-volume ratio metal oxide nanowires for solid-state gas sensing should be highlighted. The future research work should aim at exploration of other possible mixed/doped metal oxide materials, optimization of compositions and temperature effect in order to improve the sensitivity and selectivity, as well as theoretical study, simulation and modeling of the doping effects. Sensor devices featuring metal oxide nanowires as key functional component should also be given great attention; the array style device consisted of multiple nanowire sensor units needs further development toward a commercial product level. Furthermore, this prototype nanowire sensor array device may be incorporated with fluorescent polymer, surface acoustic wave (SAW) sensors to compose an electronic-nose system with data fusion technique for precise detection, discrimination and quantification of hazardous gas, chemical and explosives.
机译:采用模板辅助电沉积法合成了各种金属纳米线,通过调节镀液中的化学成分,可以通过共沉积工艺合成合金或掺杂的纳米线。通过将金属纳米线热氧化成其相应的金属氧化物形式来获得金属氧化物纳米线。使用光学显微镜和扫描电子显微镜(SEM)表征这些金属和金属氧化物纳米线的形态。使用能量色散X射线(EDS)光谱和X射线衍射(XRD)进行元素和晶体分析。出于集成目的,研究了介电电泳(DEP)组件并将其应用于纳米线系统。该基于场效应的技术随后被应用于在传感器芯片制造过程中对准与微电极形成接触的纳米线。金属氧化物纳米线的传感器应用已得到系统和系统的研究。已经部署了动态和静态测试方法来评估不同金属氧化物纳米线的传感器性能。;首先制造了纯氧化锡纳米线,以验证对于相同的传感材料,如果以纳米线的形式制成,其性能将优于传统的厚膜/薄膜配置的灵敏度,响应和恢复时间。然后,受此令人鼓舞的初步结果的启发,合成了混合的锡-铜氧化物纳米线。与纯氧化锡纳米线相比,发现了在热氧化过程之后纳米线的有趣的形态变化,即粗糙的表面,以及增强的灵敏度。掺杂的氧化锡纳米线提供了另一种利用掺杂效果改善传感器性能的解决方案。催化掺杂剂铂,电活性掺杂剂铜,铟和镍已成功引入氧化锡纳米线中。这四种类型的掺杂的氧化锡纳米线不仅显示出良好的灵敏度和响应动力学,而且还表现出选择性差异。开发了一种可容纳多达四个独立的纳米线传感器单元的阵列设备,以同时收集测试数据并馈入计算机以建立数据库。该数据库的主成分分析(PCA)进一步放大了每种掺杂的氧化锡材料的选择性模式,并证明了该传感器阵列对化学分析物进行分类的能力。总而言之,纳米线显示出​​许多优势,例如组成种类繁多,大规模有效地组装。应该强调高表面积体积比的金属氧化物纳米线在固态气体传感方面的巨大潜力。未来的研究工作应着眼于探索其他可能的混合/掺杂金属氧化物材料,优化成分和温度效应以提高灵敏度和选择性,以及对掺杂效应进行理论研究,模拟和建模。以金属氧化物纳米线为关键功能组件的传感器设备也应给予高度重视。由多个纳米线传感器单元组成的阵列式设备需要朝着商业产品的水平进一步发展。此外,该原型纳米线传感器阵列设备可以与荧光聚合物,表面声波(SAW)传感器结合使用,以构成具有数据融合技术的电子鼻系统,以精确检测,辨别和量化有害气体,化学物质和爆炸物。

著录项

  • 作者

    Li, Xiaopeng.;

  • 作者单位

    University of Massachusetts Lowell.;

  • 授予单位 University of Massachusetts Lowell.;
  • 学科 Engineering Chemical.;Nanotechnology.;Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 117 p.
  • 总页数 117
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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