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Electrochemically derived functionalized graphene for bulk production of hydrogen peroxide

机译:电化学衍生的功能化石墨烯用于批量生产过氧化氢

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摘要

On-site peroxide generation via electrochemical reduction is gaining tremendous attention due to its importance in many fields, including water treatment technologies. Oxidized graphitic carbon-based materials have been recently proposed as an alternative to metal-based catalysts in the electrochemical oxygen reduction reaction (ORR), and in this work we unravel the role of C=O groups in graphene towards sustainable peroxide formation. We demonstrate a versatile single-step electrochemical exfoliation of graphite to graphene with a controllable degree of oxygen functionalities and thickness, leading to the formation of large quantities of functionalized graphene with tunable rate parameters, such as the rate constant and exchange current density. Higher oxygen-containing exfoliated graphene is known to undergo a two-electron reduction path in ORR having an efficiency of about 80 ± 2% even at high overpotential. Bulk production of H O via electrolysis was also demonstrated at low potential (0.358 mV vs RHE), yielding ≈34 mg/L peroxide with highly functionalized (≈23 atom %) graphene and ≈16 g/L with low functionalized (≈13 atom %) graphene, which is on par with the peroxide production using state-of-the-art precious-metal-based catalysts. Hence this method opens a new scheme for the single-step large-scale production of functionalized carbon-based catalysts (yield ≈45% by weight) that have varying functionalities and can deliver peroxide via the electrochemical ORR process.
机译:由于电化学还原在许多领域(包括水处理技术)中的重要性,因此通过电化学还原产生现场过氧化物引起了极大的关注。近年来,已经提出了氧化石墨碳基材料作为电化学氧还原反应(ORR)中金属基催化剂的替代方法,并且在这项工作中,我们揭示了石墨烯中C = O基团对可持续过氧化物形成的作用。我们展示了一种通用的单步电化学剥落方法,可将石墨剥落成具有可控制的氧官能度和厚度的石墨烯,从而导致形成大量具有可调速率参数(例如速率常数和交换电流密度)的功能化石墨烯。已知含高氧的片状石墨烯即使在高过电势下也会在ORR中经历两电子还原路径,效率约为80±2%。还显示了在低电势下(0.358 mV vs RHE)通过电解批量生产HO的情况,高功能化(≈23原子%)的石墨烯可产生≈34mg / L过氧化物,低功能化(≈13原子%)可产生≈16g / L )石墨烯,与使用最先进的贵金属基催化剂的过氧化物生产相当。因此,该方法为单步大规模生产功能化碳官能化碳基催化剂(产率约45%(重量))打开了新方案,该催化剂可以通过电化学ORR工艺输送过氧化物。

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