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首页> 外文期刊>ACS nano >Toward practical gas sensing with highly reduced graphene oxide: A new signal processing method to circumvent run-to-run and device-to-device variations
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Toward practical gas sensing with highly reduced graphene oxide: A new signal processing method to circumvent run-to-run and device-to-device variations

机译:使用高度还原的氧化石墨烯进行实用的气体传感:一种新的信号处理方法,可避免批量生产和设备之间的变化

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摘要

Graphene is worth evaluating for chemical sensing and biosensing due to its outstanding physical and chemical properties. We first report on the fabrication and characterization of gas sensors using a back-gated field-effect transistor platform with chemically reduced graphene oxide (R-GO) as the conducting channel. These sensors exhibited a 360% increase in response when exposed to 100 ppm NO_2 in air, compared with thermally reduced graphene oxide sensors we reported earlier. We then present a new method of signal processing/data interpretation that addresses (i) sensing devices with long recovery periods (such as required for sensing gases with these R-GO sensors) as well as (ii) device-to-device variations. A theoretical analysis is used to illuminate the importance of using the new signal processing method when the sensing device suffers from slow recovery and non-negligible contact resistance. We suggest that the work reported here (including the sensor signal processing method and the inherent simplicity of device fabrication) is a significant step toward the real-world application of graphene-based chemical sensors.
机译:石墨烯具有出色的物理和化学特性,因此值得在化学传感和生物传感方面进行评估。我们首先报告了使用背栅场效应晶体管平台和化学还原氧化石墨烯(R-GO)作为导电通道的气体传感器的制造和表征。与我们之前报道的热还原氧化石墨烯传感器相比,这些传感器在空气中暴露于100 ppm NO_2时显示出360%的响应增加。然后,我们介绍了一种信号处理/数据解释的新方法,该方法可解决(i)具有长恢复周期的传感设备(例如使用这些R-GO传感器传感气体所需的设备)以及(ii)设备之间的差异。当感测设备恢复缓慢且接触电阻不可忽略时,将使用理论分析来阐明使用新信号处理方法的重要性。我们建议此处报告的工作(包括传感器信号处理方法和设备制造的固有简单性)是朝着基于石墨烯的化学传感器的实际应用迈出的重要一步。

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