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Reliability of Sensors Based on Nanowire Networks Operating in a Dynamic Environment

机译:动态环境下基于纳米线网络的传感器的可靠性

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Recent advances in nanotechnology have provided the opportunity to significantly enhance the performance of hydrogen gas nanosensors. Our research focuses on the reliability of one particular nanosensor, a network of ultra small palladium nanowires, which detects hydrogen gas through a change in resistivity. The discrete random variable, representing the lifetime of the nanosensor, is defined as the number of exposures to, or cycles of, hydrogen gas that the nanosensor can withstand before it no longer functions. The nanosensor is modeled, and the reliability is analyzed under the assumption that the nanosensor is performing in an environment where the probability of a nanowire breaking changes after each cycle of hydrogen gas. Nanoscale components present unique difficulties when evaluating the reliability of any device. We attempt to resolve some of these issues by creating a flexible model that allows for the unknown characteristics of the nanosensor to be accounted for. Although this work is motivated by one particular nanosensor, our results can also be applied to assess the reliability of any nanodevice where our proposed model is a reasonable choice.
机译:纳米技术的最新进展提供了显着提高氢气纳米传感器性能的机会。我们的研究重点在于一种特殊的纳米传感器的可靠性,该传感器是超小型钯纳米线的网络,该网络通过电阻率的变化检测氢气。代表纳米传感器寿命的离散随机变量定义为纳米传感器不再起作用之前可以承受的氢气暴露次数或循环次数。对纳米传感器进行建模,并在纳米传感器在每个氢气循环后纳米线断裂的概率发生变化的环境中运行的假设下对可靠性进行分析。在评估任何设备的可靠性时,纳米级组件都存在独特的困难。我们试图通过创建一个灵活的模型来解决其中的一些问题,该模型允许考虑纳米传感器的未知特性。尽管这项工作是由一个特定的纳米传感器推动的,但是我们的结果也可以用于评估我们提出的模型是合理选择的任何纳米设备的可靠性。

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