等离子体基纳米复合薄膜的高温气敏研究

L. Banu, R. Potyrailo, M. Carpenter
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引用次数: 0

摘要

在高温和无氧环境下,利用嵌有Au纳米粒子的等离子体基金属氧化物薄膜作为传感材料,对H2和CO2气体进行检测。这种传感技术的应用包括固体氧化物燃料电池(sofc)以及高温恶劣的环境,可能是氧化或还原的性质。固体氧化物燃料电池入口流中H2、CO2、CO、CH4和水蒸气的原位检测对其高效运行具有重要意义。现有的传感器有几个突出的局限性,如动态范围差,稳定性差,响应时间慢,以及在存在大量干扰和污染物的情况下无法准确检测一种或几种感兴趣的气体。具有良好灵敏度、选择性和热稳定性的材料对于气体的快速可靠检测和监测仍然是必要的。本文研究了嵌入金属氧化物中的AuNPs的局部表面等离子体响应(LSPR),用于检测H2和CO2。首先,采用CeO2负载的AuNP样品对H2和CO2进行百分比水平检测。将研究扩展到CO2 / N2载气中的H2传感以及H2 / N2载气中的CO2传感。此外,H2预处理和温度升高对Au-CeO2膜上的CO2有显著的响应。在需要多点或分布式测量的情况下,这些传感器应作为现有仪器的补充,因此,具有稳定性、选择性和灵敏度的传感器将确保一系列平行测量,以增强系统控制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of plasmonic based nanocomposite thin films for high temperature gas sensing
Plasmonic based thin metal oxide films embedded with Au nanoparticles (AuNPs) have been employed as sensing materials for detection of H2 and CO2 gases at high temperature and an oxygen free environment. Applications of this sensing technology include solid oxide fuel cells (SOFCs) as well as high temperature harsh environments which might be oxidizing or reducing in nature. In situ detection of H2, CO2, CO, CH4, and water vapor at the inlet stream of solid oxide fuel cell is important for its efficient operation. Existing sensors have several prominent limitations such as poor dynamic range, poor stability, slow response time, and inability to accurately detect one or several gases of interest in the presence of numerous interferences and contaminants. Materials with good sensitivity, selectivity and thermal stability for rapid reliable detection and monitoring of gases is still a necessity. In this work, the localized surface plasmon response (LSPR) of AuNPs embedded in metal oxide is investigated for detection of H2 and CO2. Firstly, CeO2 supported AuNP sample is employed for percent level detection of H2 and CO2. The study is extended to H2 sensing in a CO2 / N2 carrier gas as well as CO2 sensing in a H2 / N2 carrier gas. Additionally, H2 pretreatment and increased temperature showed a signature response for CO2 on Au-CeO2 film. These sensors should complement existing instruments in situations when multi-point or distributed measurements are needed and as such sensors with demonstrated stability, selectivity and sensitivity will ensure a series of parallel measurements for enhanced system control.
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