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Graphene oxide electrocatalyst on MnO2 air cathode as an efficient electron pump for enhanced oxygen reduction in alkaline solution

机译:MnO2空气阴极上的氧化石墨烯电催化剂可作为有效的电子泵来增强碱性溶液中的氧还原

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摘要

Graphene oxide (GO) was deposited on the surface of a MnO2 air cathode by thermal evaporation at 50°C from a GO colloidal suspension. Fourier transformed infrared spectroscopy and field emission scanning electron microscopy confirmed the presence of GO on the MnO2 air cathode (GO-MnO2). Voltammetry and chrono-amperometry showed increased currents for the oxygen reduction reaction (ORR) in 6 M KOH solution for GO-MnO2 compared to the MnO2 cathode. The GO-MnO2 was used as an air cathode in an alkaline tin-air cell and produced a maximum power density of 13 mW cm−2, in contrast to MnO2, which produced a maximum power density of 9.2 mW cm−2. The electrochemical impedance spectroscopy results suggest that the chemical step for the ORR is the rate determining step, as proposed earlier by different researchers. It is suggested that the presence of GO and electrochemically reduced graphene oxide (ERGO) on the MnO2 surface are responsible for the increased rate of this step, whereby GO and ERGO accelerate the process of electron donation to the MnO2 and to adsorbed oxygen atoms.
机译:通过从GO胶体悬浮液在50°C下热蒸发,将氧化石墨烯(GO)沉积在MnO2空气阴极的表面上。傅里叶变换红外光谱和场发射扫描电子显微镜证实了MnO2空气阴极(GO-MnO2)上存在GO。伏安法和计时电流法显示,与MnO2阴极相比,GO-MnO2在6 forM KOH溶液中的氧还原反应(ORR)电流增加。 GO-MnO2用作碱性锡空气电池中的空气阴极,产生的最大功率密度为13 mW cm -2 ,而MnO2的最大功率密度为9.2 mW cm -2 。电化学阻抗谱结果表明,ORR的化学步骤是速率确定步骤,这是由不同的研究人员先前提出的。建议在MnO2表面上存在GO和电化学还原的氧化石墨烯(ERGO)导致该步骤的速率增加,从而GO和ERGO加速了电子向MnO2和吸附的氧原子的供电。

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