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首页> 外文期刊>Scientific reports. >Reduced Graphene Oxide Thin Film on Conductive Substrates by Bipolar Electrochemistry
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Reduced Graphene Oxide Thin Film on Conductive Substrates by Bipolar Electrochemistry

机译:通过双极电化学还原导电衬底上的氧化石墨烯薄膜

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摘要

Recent years have shown an increased interest in developing manufacturing processes for graphene and its derivatives that consider the environmental impact and large scale cost-effectiveness. However, today's most commonly used synthesis routes still suffer from their excessive use of harsh chemicals and/or the complexity and financial cost of the process. Furthermore, the subsequent transfer of the material onto a substrate makes the overall process even more intricate and time-consuming. Here we describe a single-step, single-cell preparation procedure of metal-supported reduced graphene oxide (rGO) using the principle of bipolar electrochemistry of graphite in deionized water. Under the effect of an electric field between two stainless steel feeder electrodes, grapheme layers at the anodic pole of the wireless graphite were oxidized into colloidal dispersion of GO, which migrated electrophoretically towards the anodic side of the cell, and deposited in the form of rGO (d(002)?= 0.395 nm) by van der Waals forces. For substrates chemically more susceptible to the high anodic voltage, we show that the electrochemical setup can be adapted by placing the latter between the wireless graphite and the stainless steel feeder anode. This method is straightforward, inexpensive, environmentally-friendly, and could be easily scaled up for high yield and large area production of rGO thin films.
机译:近年来,人们对开发石墨烯及其衍生物的制造工艺表现出越来越大的兴趣,该工艺考虑了环境影响和大规模的成本效益。但是,当今最常用的合成路线仍然遭受过度使用刺激性化学品和/或过程的复杂性和财务成本的困扰。此外,随后将材料转移到衬底上的过程使整个过程更加复杂和耗时。在这里,我们使用去离子水中石墨的双极电化学原理描述了金属负载的还原氧化石墨烯(rGO)的单步单细胞制备程序。在两个不锈钢馈电电极之间的电场作用下,无线石墨阳极的石墨素层被氧化成GO的胶体分散体,然后通过电泳向电池的阳极侧迁移,并以rGO的形式沉积范德华力(d(002)θ= 0.395nm)。对于化学上较易受高阳极电压影响的基材,我们表明可以通过将后者置于无线石墨和不锈钢进料器阳极之间来调整电化学设置。该方法简单,便宜,环保,并且可以轻松扩大规模,以高产量和大面积生产rGO薄膜。

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