Water adsorption kinetics on graphene controlled by surface modification of supporting substrates

Takumu Hirose, Naoto Ochi, Ryo Nouchi
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Abstract

Sensing layers with an increased affinity for water molecules are essential for the development of highly sensitive humidity sensors. Graphene possesses superior electrical properties that make it suitable for the fabrication of low-noise miniaturized sensors. However, the enhancement of water affinity by introducing surface defects such as covalently attached hydrophilic groups reduces the electrical conductivity of graphene. In this study, we exploit the wetting transparency of graphene to increase its water affinity without introducing defects. Kinetic measurements using a Kelvin probe with a large-diameter tip showed that the rate constant of water adsorption was higher for graphene deposited on a hydrophilic substrate. These findings suggest that the wetting transparency of graphene can be exploited to reduce defect introduction into the graphene sensing layer, and has potential applications in sensor technologies.
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石墨烯上的水吸附动力学受支撑基底的表面改性控制
对水分子具有更强亲和力的传感层对于开发高灵敏度的湿度传感器至关重要。石墨烯具有优异的电学特性,适合制造低噪声微型传感器。然而,通过引入共价连接的亲水基团等表面缺陷来增强水亲和力,会降低石墨烯的导电性。在本研究中,我们利用石墨烯的润湿透明度,在不引入缺陷的情况下提高了其水亲和性。使用带有大直径针尖的开尔文探针进行的动力学测量表明,沉积在亲水性基底上的石墨烯吸附水的速率常数更高。这些研究结果表明,可以利用石墨烯的润湿透明度来减少石墨烯传感层的缺陷引入,这在传感器技术中具有潜在的应用价值。
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