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Graphene-based CO2 sensing and its cross-sensitivity with humidity

机译:石墨烯基CO2传感及其与湿度的交叉敏感性

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摘要

We present graphene-based CO2 sensing and analyze its cross-sensitivity with humidity. In order to assess the selectivity of graphene-based gas sensing to various gases, measurements are performed in argon (Ar), nitrogen (N2), oxygen (O2), carbon dioxide (CO2), and air by selectively venting the desired gas from compressed gas bottles into an evacuated vacuum chamber. The sensors provide a direct electrical readout in response to changes in high concentrations, from these bottles, of CO2, O2, nitrogen and argon, as well as changes in humidity from venting atmospheric air. From the signal response to each gas species, the relative graphene sensitivity to each gas is extracted as a relationship between the percentage-change in graphene's resistance response to changes in vacuum chamber pressure. Although there is virtually no response from O2, N2 and Ar, there is a sizeable cross-sensitivity between CO2 and humidity occurring at high CO2 concentrations. However, under atmospheric concentrations of CO2, this cross-sensitivity effect is negligible – allowing for the use of graphene-based humidity sensing in atmospheric environments. Finally, charge density difference calculations, computed using density functional theory (DFT) are presented in order to illustrate the bonding of CO2 and water molecules on graphene and the alterations of the graphene electronic structure due to the interactions with the substrate and the molecules.
机译:我们提出了基于石墨烯的CO2传感技术,并分析了其与湿度的交叉敏感性。为了评估基于石墨烯的气体传感对各种气体的选择性,通过选择性地排放所需的气体,在氩气(Ar),氮气(N2),氧气(O2),二氧化碳(CO2)和空气中进行测量将压缩的气体瓶放入抽真空的真空室中。传感器根据这些瓶中CO2,O2,氮气和氩气中的高浓度变化以及通过排放大气而产生的湿度变化,提供直接的电读数。从对每种气体种类的信号响应中,提取出对每种气体的相对石墨烯敏感性,作为石墨烯电阻响应对真空室压力变化的百分比变化之间的关系。尽管O,N2和Ar几乎没有响应,但在高CO2浓度下,CO2和湿度之间存在相当大的交叉敏感性。但是,在大气中的CO2浓度下,这种交叉敏感效应可忽略不计–允许在大气环境中使用基于石墨烯的湿度感应。最后,介绍了使用密度泛函理论(DFT)计算的电荷密度差异计算,以说明石墨烯上的CO2和水分子的键合以及由于与底物和分子相互作用而引起的石墨烯电子结构的变化。

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