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优化低功耗化学电阻式气体传感器:预测热建模和机械失效分析。

Optimization of a Low-Power Chemoresistive Gas Sensor: Predictive Thermal Modelling and Mechanical Failure Analysis.

机构信息

MNF-The Micro Nano characterization and fabrication Facility, Bruno Kessler Foundation, Via Sommarive 18, 38123 Trento, Italy.

Faculty of Science and Technology, Free University of Bolzano-Bozen, Piazza Università 5, 39100 Bolzano, Italy.

出版信息

Sensors (Basel). 2021 Jan 25;21(3):783. doi: 10.3390/s21030783.

Abstract

The substrate plays a key role in chemoresistive gas sensors. It acts as mechanical support for the sensing material, hosts the heating element and, also, aids the sensing material in signal transduction. In recent years, a significant improvement in the substrate production process has been achieved, thanks to the advances in micro- and nanofabrication for micro-electro-mechanical system (MEMS) technologies. In addition, the use of innovative materials and smaller low-power consumption silicon microheaters led to the development of high-performance gas sensors. Various heater layouts were investigated to optimize the temperature distribution on the membrane, and a suspended membrane configuration was exploited to avoid heat loss by conduction through the silicon bulk. However, there is a lack of comprehensive studies focused on predictive models for the optimization of the thermal and mechanical properties of a microheater. In this work, three microheater layouts in three membrane sizes were developed using the microfabrication process. The performance of these devices was evaluated to predict their thermal and mechanical behaviors by using both experimental and theoretical approaches. Finally, a statistical method was employed to cross-correlate the thermal predictive model and the mechanical failure analysis, aiming at microheater design optimization for gas-sensing applications.

摘要

衬底在电阻式气敏传感器中起着关键作用。它作为传感材料的机械支撑,承载加热元件,并帮助传感材料进行信号转导。近年来,由于微纳制造技术在微机电系统(MEMS)技术中的进步,衬底的生产工艺得到了显著改善。此外,新型材料的使用和低功耗的硅微加热器的缩小,导致高性能气体传感器的发展。研究了各种加热器布局以优化膜上的温度分布,并利用悬膜结构来避免通过硅体的热传导而导致的热损失。然而,目前缺乏针对微加热器的热和机械性能优化的综合预测模型研究。在这项工作中,使用微制造工艺开发了三种不同膜尺寸的微加热器布局。通过实验和理论方法评估了这些器件的性能,以预测其热和机械行为。最后,采用统计方法对热预测模型和机械失效分析进行交叉关联,旨在针对气体传感应用进行微加热器设计优化。

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