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首页> 外文期刊>The Analyst: The Analytical Journal of the Royal Society of Chemistry: A Monthly International Publication Dealing with All Branches of Analytical Chemistry >Enhancing the sensitivity of chemiresistor gas sensors based on pristine carbon nanotubes to detect low-ppb ammonia concentrations in the environment
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Enhancing the sensitivity of chemiresistor gas sensors based on pristine carbon nanotubes to detect low-ppb ammonia concentrations in the environment

机译:增强基于原始碳纳米管的化学电阻式气体传感器的灵敏度,以检测环境中的低ppb氨浓度

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摘要

The possibility of using novel architectures based on carbon nanotubes (CNTs) for a realistic monitoring of the air quality in an urban environment requires the capability to monitor concentrations of polluting gases in the low-ppb range. This limit has been so far virtually neglected, as most of the testing of new ammonia gas sensor devices based on CNTs is carried out above the ppm limit. In this paper, we present single-wall carbon nanotube (SWCNT) chemiresistor gas sensors operating at room temperature, displaying an enhanced sensitivity to NH3. Ammonia concentrations in air as low as 20 ppb have been measured, and a detection limit of 3 ppb is demonstrated, which is in the full range of the average NH3 concentration in an urban environment and well below the sensitivities so far reported for pristine, non-functionalized SWCNTs operating at room temperature. In addition to careful preparation of the SWCNT layers, through sonication and dielectrophoresis that improved the quality of the CNT bundle layers, the low-ppb limit is also attained by revealing and properly tracking a fast dynamics channel in the desorption process of the polluting gas molecules.
机译:使用基于碳纳米管(CNTs)的新颖架构对城市环境中的空气质量进行实际监控的可能性要求能够监控低ppb范围内的污染气体浓度。到目前为止,该限制实际上已被忽略,因为大多数新的基于CNT的氨气传感器设备的测试都是在ppm限制以上进行的。在本文中,我们介绍了在室温下运行的单壁碳纳米管(SWCNT)化学电阻气体传感器,显示出对NH3的增强的敏感性。已测量出空气中氨的浓度低至20 ppb,并证明了3 ppb的检出限,这在城市环境中的平均NH3浓度的整个范围内,远低于迄今为止报道的对原始,非功能化的SWCNT在室温下运行。除了通过仔细地准备SWCNT层,通过超声处理和介电电泳提高CNT束层的质量外,还可以通过揭示并正确跟踪污染气体分子的解吸过程中的快速动力学通道来达到低ppb限制。

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