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Model for suspended gate field effect transistors used in laboratory animal cage monitoring.

机译:用于实验室动物笼子监测的悬浮栅场效应晶体管模型。

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摘要

Over the past century, great advances in medicine have been achieved through the use of laboratory animals, specifically rodents. The quality of the animal environment is important to the rodent's health and welfare, and their well-being directly affects the quality of research involving their use. There can be significant variability in air quality between cages depending on a number of factors such as population size and air flow. A way to accommodate for the variability between cages is to monitor environmental quality indicators within the cage, such as ammonia, carbon dioxide, temperature, and relative humidity. Since rodent cages are approximately the size of a shoebox, commercially available sensors would be too large for this application. Therefore, micro-sensors, or field effect transistors, were investigated for application in a rodent cage. Since these sensors were on the forefront of technology, a theoretical model was developed for the ammonia sensor to further understand the chemical reaction taking place on its surface.;The sensors were tested in a controlled environment, where the air quality was known. The magnitude and time of the response to different levels of contaminants (e.g., ammonia and carbon dioxide) were determined. The study showed that the sensors can detect changes in air quality in a sufficiently short amount of time (5 minutes) so that corrective action could be taken to prevent the rodents from overexposure to harmful levels of air contaminants. At the present development stage, the sensors used for this investigation will require further improvements before implementation in a laboratory animal cage. These improvements include but are not limited to eliminating drift of baseline signal, increasing sensitivity of sensor, amplifying signal output, and coupling each gas sensor with a humidity sensor.;The reaction mechanism selected for the model which was best supported by the literature and the experiments was molecular adsorption of ammonia on a titanium nitride surface. The experimental results were fitted to the model to obtain the adsorption and desorption rate constants, the equilibrium concentration constant, equilibrium constant, and Gibbs free energy, which respectively were 6.28 L/mol*s, 6.43 x 10-3 s -1,976.7 L/mol, 39.04, and -9.25 kJ/mol. Based on these values, it was determined that the forward reaction, or adsorption, occurs spontaneously. There was good correlation between the theoretical model and the experimental results, indicating that the theoretical model was sufficient for this application.
机译:在过去的一个世纪中,通过使用实验动物,特别是啮齿动物,医学取得了长足的进步。动物环境的质量对啮齿动物的健康和福利至关重要,它们的健康状况直接影响涉及其使用的研究质量。笼子之间的空气质量可能会存在很大差异,具体取决于人口数量和气流等多种因素。适应笼子之间变化的一种方法是监视笼子内的环境质量指标,例如氨,二氧化碳,温度和相对湿度。由于啮齿类动物的笼子大约只有鞋盒的大小,因此对于这种应用而言,市售的传感器将太大。因此,研究了微传感器或场效应晶体管在啮齿动物笼中的应用。由于这些传感器处于技术的最前沿,因此为氨传感器开发了一个理论模型,以进一步了解其表面发生的化学反应。传感器在已知空气质量的受控环境中进行了测试。确定了对不同水平的污染物(例如,氨和二氧化碳)的响应的大小和时间。研究表明,这些传感器可以在足够短的时间内(5分钟)检测到空气质量的变化,因此可以采取纠正措施,以防止啮齿动物过度暴露于有害的空气污染物水平。在目前的开发阶段,用于此研究的传感器需要在实验室动物笼中实施之前进行进一步改进。这些改进包括但不限于消除基线信号的漂移,提高传感器的灵敏度,放大信号输出以及将每个气体传感器与湿度传感器耦合。为模型选择的反应机理得到了文献和专家的最好支持实验是氨在氮化钛表面上的分子吸附。将实验结果拟合到模型中,获得吸附和解吸速率常数,平衡浓度常数,平衡常数和吉布斯自由能,分别为6.28 L / mol * s,6.43 x 10-3 s -1,976.7 L / mol,39.04和-9.25 kJ / mol。基于这些值,确定正反应或吸附是自发发生的。理论模型与实验结果之间具有良好的相关性,表明理论模型足以用于此应用。

著录项

  • 作者

    Supan, Karen E.;

  • 作者单位

    University of Florida.;

  • 授予单位 University of Florida.;
  • 学科 Engineering Mechanical.;Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 145 p.
  • 总页数 145
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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