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Higher-order sensors for fast detection of gases.

机译:高阶传感器,用于快速检测气体。

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摘要

The research is divided into two main parts: the sensing part and the gas delivery part.; The reliable chemical information from the chemical sensor requires that the sensitive layer of the sensor exhibits long-term stability. To improve the stability of the sensing layer, camphorsulfonic acid was added to the formic acid. The introduction of photo-irradiation at 254 nm as an additional treatment to the sensing layer was proved to be effective.; For gas selectivity of PANI matrix, metal or metal oxide clusters have been incorporated into the matrix. The composite materials of PANI with silver, copper, iron, nickel, palladium and mercury were also prepared and exposed to different gases.; The second part of the thesis discusses the gas delivery system to the sensors using the synthetic jet technology. The sniffing functionality was demonstrated using the designed jet cell for operation in the open system. The gas sniffing experiments showed that in the presence of the jet, the response time of the sensor is faster by about two orders of magnitude (20 compared to 1800 seconds).; The jet sampling system was applied to continuous monitoring of ammonia gas filter performance using the chemFET array. The jet system collected the gas before and after filtering, and the difference between the two responses was compared to observe the break-through of the filter. It was concluded that the gas sensing system integrated with the gas sampling functionality can be applied to monitor a gas filter performance.; The cell was designed so that the impinging jet covers the sensing active area of the array of eight chemFETs. The two-dimensional distribution of the ammonia gas concentrations showed that the jet covers the active sensing area in an effective way so that the sampling volume for sensing is significantly reduced compared with the conventional gas flow cell system.; Based on these initial studies shown in this thesis, the proposed gas sniffing system was shown to be effective in realizing fast detections of gases for critical applications of a gas sensor system.
机译:研究分为两个主要部分:传感部分和气体输送部分。来自化学传感器的可靠化学信息要求传感器的敏感层具有长期稳定性。为了提高感测层的稳定性,将樟脑磺酸添加到甲酸中。在254nm处引入光辐射作为对感测层的附加处理被证明是有效的。对于PANI基质的气体选择性,已将金属或金属氧化物簇团混入基质中。还制备了PANI与银,铜,铁,镍,钯和汞的复合材料,并使其暴露于不同的气体中。本文的第二部分讨论了使用合成射流技术将气体输送到传感器的系统。使用在开放系统中运行的设计喷射室演示了嗅探功能。气体嗅探实验表明,在有射流的情况下,传感器的响应时间快了大约两个数量级(20相对于1800秒)。使用chemFET阵列将喷射采样系统应用于连续监测氨气过滤器的性能。喷射系统收集过滤前后的气体,比较两个响应之间的差异,以观察过滤器的穿透情况。结论是,集成有气体采样功能的气体传感系统可用于监视气体过滤器的性能。电池的设计使得撞击的射流覆盖了八个chemFET阵列的感应有效区域。氨气浓度的二维分布表明,射流有效地覆盖了有效的感应区域,因此与传统的气体流通池系统相比,显着减少了用于采样的采样量。基于本文显示的这些初步研究,表明所提出的气体嗅探系统可有效实现对气体传感器系统关键应用的气体快速检测。

著录项

  • 作者

    Sasaki, Isao.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Chemistry Analytical.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 109 p.
  • 总页数 109
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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