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吡咯丁酸在石墨烯上单分子层的形成。

On Monolayer Formation of Pyrenebutyric Acid on Graphene.

机构信息

Division of Solid State Electronics, Department of Engineering Sciences, Uppsala University , SE-751 21 Uppsala, Sweden.

Division of Materials Theory, Department of Physics and Astronomy, Uppsala University , SE-751 20 Uppsala, Sweden.

出版信息

Langmuir. 2017 Apr 18;33(15):3588-3593. doi: 10.1021/acs.langmuir.6b04237. Epub 2017 Apr 4.

Abstract

As a two-dimensional material with high charge carrier mobility, graphene may offer ultrahigh sensitivity in biosensing. To realize this, the first step is to functionalize the graphene. This is commonly done by using 1-pyrenebutyric acid (PBA) as a linker for biomolecules. However, the adsorption of PBA on graphene remains poorly understood despite reports of successful biosensors functionalized via this route. Here, the PBA adsorption on graphene is characterized through a combination of Raman spectroscopy, ab initio calculations, and spectroscopic ellipsometry. The PBA molecules are found to form a self-assembled monolayer on graphene, the formation of which is self-limiting and Langmuirian. Intriguingly, in concentrated solutions, the PBA molecules are found to stand up and stack horizontally with their edges contacting the graphene surface. This morphology could facilitate a surface densely populated with carboxylic functional groups. Spectroscopic analyses show that the monolayer saturates at 5.3 PBA molecules per nm and measures ∼0.7 nm in thickness. The morphology study of this PBA monolayer sheds light on the π-π stacking of small-molecule systems on graphene and provides an excellent base for optimizing functionalization procedures.

摘要

作为一种具有高电荷载流子迁移率的二维材料,石墨烯在生物传感中可能具有超高的灵敏度。为了实现这一点,第一步是对石墨烯进行功能化。通常通过使用 1-芘丁酸(PBA)作为生物分子的连接体来实现这一点。然而,尽管有报道称通过这种途径成功地实现了生物传感器的功能化,但 PBA 在石墨烯上的吸附仍未得到很好的理解。在这里,通过拉曼光谱、从头算计算和光谱椭圆偏振法的组合对 PBA 在石墨烯上的吸附进行了表征。发现 PBA 分子在石墨烯上形成了自组装单层,其形成是自限制的和 Langmuirian 的。有趣的是,在高浓度溶液中,发现 PBA 分子直立并水平堆叠,其边缘与石墨烯表面接触。这种形态可能有利于表面上挤满了羧酸官能团。光谱分析表明,单层在 5.3 个 PBA 分子/ nm 时达到饱和,厚度约为 0.7 nm。这种 PBA 单层的形态研究揭示了小分子系统在石墨烯上的 π-π 堆积,并为优化功能化程序提供了良好的基础。

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