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One-Step Preparation of Fluorographene: A Highly Efficient Low-Cost, and Large-Scale Approach of Exfoliating Fluorographite

机译:一步一步制备萤光石墨烯:高效低成本,大规模的萤石去角质方法

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Fluorographene, a cousin of graphene, not only inherits the excellent mechanical properties of graphene but also has great unique application potential in high-performance devices and materials, such as lubricating agents, digital transistors, nanocomposites, and energy-storage devices. However, large-scale preparation of fluorographene remains a great challenge. Herein, an easy-operating, highly scalable, and low-cost approach was reported for the preparation of fluorographene using commercially available fluorographite as the starting material. In this procedure, fluorographite turned into few-layer fluorographene. through a rapid exfoliation process with Na2O2 and HSO3Cl as exfoliating agents. The whole preparation process was performed in air and without heating, sonication, and protective gas. The obtained fluorographene was characterized by Fourier transform infrared spectroscopy, Raman spectroscopy, ~(19)F nuclear magnetic resonance spectroscopy, X- ray diffraction, thermogravimetric analysis, atomic force microscopy, and transmission electron microscopy, and it possesses a hexagonal polycrystalline structure. Fluorographene and fluorographite were employed as cathode materials of the primary lithium battery, and it was found that the specific discharge capacity of the battery using fluorographene was improved remarkably compared to that using fluorographite. Cyclic voltammetry results also showed that specific capacitances of fluorographene were dozens of times higher than that of fluorographite. It is clear that electrochemical properties of fluorographene are significantly improved against fluorographite.
机译:石墨烯是石墨烯的表亲,它不仅继承了石墨烯的优异机械性能,而且在高性能器件和材料(如润滑剂,数字晶体管,纳米复合材料和储能器件)中具有巨大的独特应用潜力。但是,大规模制备氟代石墨烯仍然是巨大的挑战。本文中,报道了一种使用可商购的氟代石墨作为起始原料来制备氟代石墨烯的易于操作,高度可扩展且低成本的方法。在该过程中,氟石墨变成了几层氟石墨烯。通过使用Na2O2和HSO3Cl作为去角质剂的快速去角质过程。整个制备过程在空气中进行,没有加热,超声处理和保护性气体。通过傅立叶变换红外光谱,拉曼光谱,〜(19)F核磁共振光谱,X射线衍射,热重分析,原子力显微镜和透射电子显微镜对所得的石墨烯进行表征,并具有六边形多晶结构。氟代石墨烯和氟代石墨被用作一次锂电池的正极材料,并且发现与氟代石墨相比,使用氟代石墨烯的电池的比放电容量显着提高。循环伏安法的结果还表明,氟石墨烯的比电容是氟石墨的比电容的数十倍。显然,氟代石墨烯的电化学性能相对于氟代石墨显着提高。

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