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Microsystems for optical gas sensing incorporating the solvatochromic dye

机译:包含溶剂变色染料的光学气体传感微系统

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摘要

The work presented in this thesis demonstrates three Microsystems using microstructure glass (MSG), polymers and Flame Hydrolysis Deposition (FHD) glass as optical gas sensors, which incorporate the solvatochromic dyes, Nile red and Reichardt's dye in various supporting polymers. Sensor fabrication techniques were developed and their performance was tested and discussed. MSG and SU-8 polymer based devices containing the polymer/dye sensors were used to produce fluorescence from the dye in the presence of analytes, including hexane, methanol and butan-2-ol, and their performances were compared. The fluorescence response, detected via an epifluorescence microscope and imaging CCD camera, showed that the MSG devices are superior to their SU-8 analogues, with respect to sensor response and response recovery, in detecting these analytes. These results can be attributed to the physical properties of, and the interactions between, the polymer/dye complex and the analytes, as well as the structure of the support for the sensors. By taking advantage of the emission shift phenomenon of the solvatochromic dye in environments with different polarities, similar to the bathochromic shift seen for the dye within different solvent solutions, the responses of the sensors at two different wavelengths show potential for gas identification and discrimination. For example, the MSG devices were found to have both superior sensitivity to analytes (up to 7 times greater) and better recovery times (up to 50% faster) than structures made in SU-8. Finally, this research has also demonstrated that the FHD technique can be used as a flexible and adaptable method for fabricating total analytical systems (mu-TAS), such as those used in Lab-on-a-Chip technology. A summary of conclusions and ideas for future work are included.
机译:本文提出的工作演示了使用微结构玻璃(MSG),聚合物和火焰水解沉积(FHD)玻璃作为光学气体传感器的三个微系统,这些系统将溶剂变色染料,尼罗红和雷卡特染料掺入了各种支持聚合物中。开发了传感器制造技术,并对它们的性能进行了测试和讨论。包含聚合物/染料传感器的基于MSG和SU-8聚合物的设备被用于在存在分析物(包括己烷,甲醇和丁-2-醇)的情况下从染料产生荧光,并对其性能进行了比较。通过落射荧光显微镜和CCD摄像头检测到的荧光响应表明,在检测这些分析物方面,MSG设备在传感器响应和响应恢复方面优于SU-8类似物。这些结果可以归因于聚合物/染料复合物和分析物的物理特性以及它们之间的相互作用,以及传感器的支撑结构。通过利用极性不同的溶剂变色染料的发射位移现象,类似于染料在不同溶剂溶液中的红变现象,传感器在两个不同波长下的响应显示出潜在的气体识别和鉴别能力。例如,与SU-8制成的结构相比,发现MSG器件对分析物的灵敏度更高(高达7倍),并且恢复时间更好(高达50%)。最后,这项研究还证明了FHD技术可以用作制造总分析系统(mu-TAS)的灵活且适应性强的方法,例如芯片实验室技术中使用的系统。总结了总结和对未来工作的想法。

著录项

  • 作者

    Li, Dong.;

  • 作者单位

    University of Glasgow (United Kingdom).;

  • 授予单位 University of Glasgow (United Kingdom).;
  • 学科 Electrical engineering.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 197 p.
  • 总页数 197
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 海洋工程;
  • 关键词

  • 入库时间 2022-08-17 11:39:28

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