Key Laboratory of Applied Superconductivity, Institute of Electrical Engineering, Chinese Academy of Sciences, #6 BeiErTiao, Haidian Street, Beijing 100190, PR China.
ChemSusChem. 2013 Jun;6(6):1084-90. doi: 10.1002/cssc.201200904. Epub 2013 May 3.
Graphene is considered as a rising-star material because of its unique properties and it is a promising material for applications in many fields. In recent years, experiments on graphene fabricated by using versatile methods have shed light on the crucial problem of aggregation and restacking, which is induced by strong π-π stacking and van der Waals forces, but preparation methods for real-world applications are still a great challenge. Here we report a facile, rapid, and environmentally friendly process, the burn-quench method, that allows large-scale and controlled synthesis of ordered mesoporous nanographene with 1-5 layers, which has a high surface area and electric conductivity. Electrodes composed of nanographene with a mesoporous architecture used both in electrochemical capacitors and lithium-ion batteries have a high specific capacitance, rate capability, energy density, and cyclic stability. Our results represent an important step toward large-scale graphene synthesis based on this new burn-quench method for applications in high-performance electrochemical energy storage devices.
石墨烯因其独特的性质被认为是一种新兴的材料,它是许多领域应用的有前途的材料。近年来,通过多种方法制备的石墨烯实验揭示了由强π-π堆积和范德华力引起的聚集和重堆积这一关键问题,但实际应用的制备方法仍然是一个巨大的挑战。在这里,我们报告了一种简单、快速、环保的方法,即燃烧淬火法,该方法允许大规模和可控地合成具有 1-5 层的有序介孔纳米石墨烯,具有高比表面积和电导率。由具有介孔结构的纳米石墨烯组成的电极,既用于电化学电容器,也用于锂离子电池,具有高比电容、倍率性能、能量密度和循环稳定性。我们的研究结果代表了朝着基于这种新的燃烧淬火方法的大规模石墨烯合成迈出的重要一步,这对于高性能电化学储能器件的应用具有重要意义。