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Design and Fabrication Challenges of a Highly Sensitive Thermoelectric-Based Hydrogen Gas Sensor

机译:高灵敏度基于热电的氢气传感器的设计和制造挑战

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摘要

This paper presents a highly sensitive thermoelectric sensor for catalytic combustible gas detection. The sensor contains two low-stress (+176 MPa) membranes of a combination of stoichiometric and silicon-rich silicon nitride that makes them chemically and thermally stable. The complete fabrication process with details, especially the challenges and their solutions, is discussed elaborately. In addition, a comprehensive evaluation of design criteria and a comparative analysis of different sensor designs are performed with respect to the homogeneity of the temperature field on the membrane, power consumption, and thermal sensitivity. Evaluating the respective tradeoffs, the best design is selected. The selected sensor has a linear thermal characteristic with a sensitivity of 6.54 mV/K. Additionally, the temperature profile on the membrane is quite homogeneous (20% root mean standard deviation), which is important for the stability of the catalytic layer. Most importantly, the sensor with a ligand (p-Phenylenediamine (PDA))-linked platinum nanoparticles catalyst shows exceptionally high response to hydrogen gas, i.e., 752 mV at 2% concentration.
机译:本文提出了一种用于催化可燃气体检测的高灵敏度热电传感器。该传感器包含两个低应力(+176 MPa)膜,这些膜是化学计量的和富硅的氮化硅的组合,使其具有化学和热稳定性。详细讨论了完整的制造过程,包括细节,尤其是挑战及其解决方案。此外,针对膜上温度场的均匀性,功耗和热敏性,对设计标准进行了全面评估,并对不同的传感器设计进行了比较分析。在评估各个折衷方案时,将选择最佳设计。所选传感器具有线性热特性,灵敏度为6.54 mV / K。此外,膜上的温度曲线非常均匀(均方根标准偏差为20%),这对于催化层的稳定性很重要。最重要的是,带有配体(对苯二甲胺(PDA)连接的铂纳米颗粒催化剂的传感器显示出对氢气的异常高响应,即浓度为2%时为752 mV。

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