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Graphene/Carbon Dot Hybrid Thin Films Prepared by a Modified Langmuir–Schaefer Method

机译:改进的Langmuir-Schaefer方法制备的石墨烯/碳点杂化薄膜

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摘要

The special electronic, optical, thermal, and mechanical properties of graphene resulting from its 2D nature, as well as the ease of functionalizing it through a simple acid treatment, make graphene an ideal building block for the development of new hybrid nanostructures with well-defined dimensions and behavior. Such hybrids have great potential as active materials in applications such as gas storage, gas/liquid separation, photocatalysis, bioimaging, optoelectronics, and nanosensing. In this study, luminescent carbon dots (C-dots) were sandwiched between oxidized graphene sheets to form novel hybrid multilayer films. Our thin-film preparation approach combines self-assembly with the Langmuir–Schaefer deposition and uses graphene oxide nanosheets as template for grafting C-dots in a bidimensional array. Repeating the cycle results in a facile and low-cost layer-by-layer procedure for the formation of highly ordered hybrid multilayers, which were characterized by photoluminescence, UV–visible, X-ray photoelectron, and Raman spectroscopies, as well as X-ray diffraction and atomic force microscopy.
机译:石墨烯的2D性质使其具有特殊的电子,光学,热和机械性能,并且通过简单的酸处理使其易于功能化,使石墨烯成为开发具有明确定义的新型杂化纳米结构的理想基础尺寸和行为。这样的杂化物作为活性材料在诸如储气,气/液分离,光催化,生物成像,光电和纳米传感的应用中具有巨大潜力。在这项研究中,将发光碳点(C点)夹在氧化石墨烯片之间,以形成新颖的杂化多层膜。我们的薄膜制备方法将自组装与Langmuir-Schaefer沉积相结合,并使用氧化石墨烯纳米片作为模板以二维阵列接枝C点。重复该循环将导致形成高度有序的杂化多层的便捷,低成本的逐层过程,其特征在于光致发光,紫外可见,X射线光电子和拉曼光谱以及X-射线衍射和原子力显微镜。

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