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Thermally reduced kaolin-graphene oxide nanocomposites for gas sensing

机译:用于气体传感的热还原高岭土-氧化石墨烯纳米复合材料

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Highly sensitive graphene-based gas sensors can be made using large-area single layer graphene, but the cost of large-area pure graphene is high, making the simpler reduced graphene oxide (rGO) an attractive alternative. To use rGO for gas sensing, however, require a high active surface area and slightly different approach is needed. Here, we report on a simple method to produce kaolin-graphene oxide (GO) nanocomposites and an application of this nanocomposite as a gas sensor. The nanocomposite was made by binding the GO flakes to kaolin with the help of 3-Aminopropyltriethoxysilane (APTES). The GO flakes in the nanocomposite were contacting neighboring GO flakes as observed by electron microscopy. After thermal annealing, the nanocomposite become conductive as showed by sheet resistance measurements. Based on the conductance changes of the nanocomposite films, electrical gas sensing devices were made for detecting NH3 and HNO3. These devices had a higher sensitivity than thermally annealed multilayer GO films. This kaolin-GO nanocomposite might be useful in applications that require a low-cost material with large conductive surface area including the demonstrated gas sensors.
机译:可以使用大面积单层石墨烯制造高灵敏度的基于石墨烯的气体传感器,但是大面积纯石墨烯的成本很高,这使得更简单的还原氧化石墨烯(rGO)成为有吸引力的选择。但是,要使用rGO进行气体传感,需要较高的有效表面积,并且需要略有不同的方法。在这里,我们报告了一种生产高岭土-氧化石墨烯(GO)纳米复合材料的简单方法,并将该纳米复合材料用作气体传感器。通过在3-氨基丙基三乙氧基硅烷(APTES)的帮助下将GO薄片与高岭土结合来制备纳米复合材料。通过电子显微镜观察,纳米复合材料中的GO薄片与相邻的GO薄片接触。在热退火之后,如薄层电阻测量所示,纳米复合材料变得导电。根据纳米复合膜的电导率变化,制备了用于检测NH 3 和HNO 3 的气体电子传感装置。这些设备比热退火的多层GO薄膜具有更高的灵敏度。这种高岭土-GO纳米复合材料可能适用于需要低成本材料且具有大导电表面积的应用,包括已证明的气体传感器。

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