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Modeling of hydrogen atom diffusion and response behavior of hydrogen sensors in Pd–Y alloy nanofilm

机译:Pd-Y合金纳米膜中氢原子扩散模型和氢传感器响应行为

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摘要

To detect hydrogen gas leakage rapidly, many types of hydrogen sensors containing palladium alloy film have been proposed and fabricated to date. However, the mechanisms and factors that determine the response rate of such hydrogen sensor have not been established theoretically. The manners in which response time is forecasted and sensitive film is designed are key issues in developing hydrogen sensors with nanometer film. In this paper, a unilateral diffusion model of hydrogen atoms in Pd alloy based on Fick’s second law is proposed to describe the Pd–H reaction process. Model simulation shows that the hydrogen sensor response time with Pd alloy film is dominated by two factors (film thickness and hydrogen diffusion coefficient). Finally, a series of response rate experiments with varying thicknesses of Pd–Y (yttrium) alloy film are implemented to verify model validity. Our proposed model can help researchers in the precise optimization of film thickness to realize a simultaneously speedy and sensitive hydrogen sensor. This study also aids in evaluating the influence of manufacturing errors on performances and comparing the performances of sensors with different thicknesses.
机译:为了迅速检测氢气泄漏,迄今为止已经提出并制造了许多类型的包含钯合金膜的氢气传感器。但是,理论上尚未确定确定这种氢传感器的响应速度的机制和因素。预测响应时间和设计敏感膜的方式是开发具有纳米膜的氢传感器的关键问题。本文提出了一种基于菲克第二定律的氢原子在钯合金中的单边扩散模型,用以描述钯-氢反应过程。模型仿真表明,Pd合金膜对氢传感器的响应时间受膜厚度和氢扩散系数两个因素支配。最后,进行了一系列不同厚度的Pd-Y(钇)合金膜的响应率实验,以验证模型的有效性。我们提出的模型可以帮助研究人员精确优化膜厚,以实现同时快速灵敏的氢传感器。这项研究还有助于评估制造误差对性能的影响,并比较不同厚度的传感器的性能。

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