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Effective Utilization of Waste Red Mud for High Performance Supercapacitor Electrodes

机译:废红色泥浆在高性能超级电容器电极中的有效利用

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摘要

In recent years, metal oxide‐based, inexpensive, stable electrodes are being explored as a potent source of high performance, sustainable supercapacitors. Here, the employment of industrial waste red mud as a pseudocapacitive electrode material is reported. Mechanical milling is used to produce uniform red mud nanoparticles, which are rich in hematite (Fe2O3), and lower amounts of other metal oxides. A comprehensive supercapacitive study of the electrode is presented as a function of ball‐milling time up to 15 h. Ten‐hour ball‐milled samples exhibit the highest pseudocapacitive behavior with a specific capacitance value of ≈317 F g−1, at a scan rate of 10 mV s−1 in 6 m aqueous potassium hydroxide electrolyte solution. The modified electrode shows an extraordinary retention of ≈97% after 5000 cycles. A detailed quantitative electrochemical analysis is carried out to understand the charge storage mechanism at the electrode–electrolyte interface. The formation of uniform nanoparticles and increased electrode stability are correlated with the high performance. This work presents two significant benefits for the environment; in energy storage, it shows the production of a stable and efficient supercapacitor electrode, and in waste management with new applications for the treatment of red mud.
机译:近年来,基于金属氧化物的廉价稳定电极正在被探索为高性能,可持续超级电容器的有效来源。在此,报道了使用工业废赤泥作为假电容电极材料。机械研磨用于生产均匀的赤泥纳米颗粒,该颗粒富含赤铁矿(Fe2O3)和少量其他金属氧化物。提出了对电极进行全面的超级电容研究,该研究与最长15 h的球磨时间有关。十小时的球磨样品在10 mV s -1 的扫描速率下表现出最高的伪电容性能,比电容值为≈317F g -1 。 6 m氢氧化钾水溶液。经过修饰的电极在5000次循环后显示出约97%的出色保留率。进行了详细的定量电化学分析,以了解电极-电解质界面处的电荷存储机理。均匀的纳米颗粒的形成和增加的电极稳定性与高性能相关。这项工作为环境带来了两个重大好处;在储能方面,它展示了稳定,高效的超级电容器电极的生产,在废物管理中也显示了用于赤泥处理的新应用。

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