基于多壁碳纳米管的超低功耗酒精蒸汽传感器

M. Sin, G. Chow, C. Fung, W.J. Li, P. Leong, K. Wong, T. Lee
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引用次数: 12

摘要

我们已经展示了基于多壁碳纳米管(MWCNTs)的传感器,它能够以超低功耗检测酒精蒸气。我们使用交流电泳技术制作了硅衬底传感器,以便在Au微电极之间形成捆绑的MWCNTs传感元件。I-V测量表明,我们可以在传感器的欧姆区域激活传感器(10mua),这没有任何过热效应。传感器只需要超低功率(~1 μ w)就可以检测酒精蒸气。它们表现出快速、可逆和可重复的反应。我们测试了传感器对酒精浓度从10 ppth到400 ppth (ppth =千分之一)的响应。结果表明,传感器的电阻与酒精浓度呈线性关系。此外,我们可以通过在6分钟内以100-250 muA电流退火,轻松地将传感器反转到初始参考电阻。此外,传感器对于来自空气、水蒸汽和酒精蒸气的流量具有选择性。最后,我们还研究了传感器的温度如何影响它们对酒精蒸气的反应。结果表明,随着传感器温度的升高,传感器的性能会下降。此外,蒸汽的冷却效果并不是决定传感器响应的主要因素。基于我们的实验,我们证明了将MWCNTs传感器转化为具有超低功耗要求的商业化酒精传感器的可行性
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ultra-Low-Power Alcohol Vapor Sensors Based on Multi-Walled Carbon Nanotube
We have demonstrated multi-walled carbon nanotube (MWCNTs) based sensors, which are capable of detecting alcohol vapor with ultra-low power. We fabricated the Si-substrate sensors using an AC electrophoretic technique so as to form bundled MWCNTs sensing elements between Au microelectrodes. The I-V measurement illustrates that we can activate the sensors at the Ohmic region of the sensors (at 10 muA), which is without any overheat effect. The sensors only need an ultra-low power (~1 muW) to detect the alcohol vapor. They exhibit fast, reversible and repeatable response. We have tested the response of the sensors with alcohol concentrations from 10 ppth to 400 ppth (ppth = parts per thousand). Our result shows that there is a linear relation between the resistance of the sensors and alcohol concentration. Also, we can easily reverse the sensor to the initial reference resistance by annealing them at 100-250 muA current within 6 minutes. Moreover, the sensors are selective with respect to flow from air, water vapor, and alcohol vapor. Finally, we have also studied how the temperature of the sensors affects their response towards alcohol vapor. The result shows that the performance of the sensors will deteriorate as the temperature of the sensors increase. Also, the cooling effect of the vapor is not a dominating factor in determining the response of the sensor. Based on our experiments, we prove the feasibility of turning the MWCNTs sensors into a commercialized alcohol sensor with ultra-low power requirements
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