Effect of graphite concentration on the electrochemical performance of a novel α-MnO2-expanded graphite-PVDF composite cathode material based on FTO substrate

A. Philip, A. Ruban Kumar
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Abstract

A facile chemical reduction method is employed for the synthesis of α-MnO2 followed by ultrasonication with synthetic graphite and poly (vinylidene pyrrolidone) PVDF for the development of α-MnO2-expanded graphite-PVDF (MGP) composite. Known masses of MGP composite are drop-casted on a fluorine-doped tin oxide (FTO) conducting glass substrate for the fabrication of composite electrodes to use as the cathode. The compositional effects of various weight percentages of graphite on the electrochemical performance of the MGP composite are studied. The increase in graphite’s weight percentage is always accompanied by an equal reduction in the weight of MnO2 by maintaining a constant amount of PVDF. We demonstrate a maximum electrochemical performance for the composite containing 80% MnO2, 10% expanded graphite, and 10% PVDF, further increases in graphite concentration (reduction in that of MnO2) have detrimental effects on the performance. The basis characterisation of the composite is carried out using XRD, FTIR, UV-VIS, AFM, and SEM and the electrochemical studies are done using CV, GCD and EIS. We observe both faradaic and non-faradaic charge storage mechanisms in the composite samples with a 35% capacitive contribution and a 65% diffusive contribution to the total capacitance. Moreover, the composite electrode demonstrates a maximum specific capacitance of 358 F/g at 10 mV/s with an outstanding power density of 2.8 KW/Kg.
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石墨浓度对基于 FTO 基底的新型 α-MnO2- 扩展石墨-PVDF 复合阴极材料电化学性能的影响
本研究采用简便的化学还原法合成α-MnO2,然后将其与合成石墨和聚(亚乙烯基吡咯烷酮)PVDF 进行超声处理,从而开发出α-MnO2-膨胀石墨-PVDF(MGP)复合材料。将已知质量的 MGP 复合材料滴铸在掺氟氧化锡(FTO)导电玻璃基板上,以制造用作阴极的复合电极。研究了不同重量百分比的石墨对 MGP 复合材料电化学性能的影响。石墨重量百分比的增加总是伴随着 MnO2 重量的等量减少,而 PVDF 的用量保持不变。我们证明了含有 80% MnO2、10% 膨胀石墨和 10% PVDF 的复合材料具有最高的电化学性能,进一步增加石墨浓度(减少 MnO2 的浓度)会对性能产生不利影响。使用 XRD、FTIR、UV-VIS、AFM 和 SEM 对复合材料进行了基础表征,并使用 CV、GCD 和 EIS 进行了电化学研究。我们在复合材料样品中观察到了法拉第和非法拉第电荷存储机制,在总电容中电容贡献率为 35%,扩散贡献率为 65%。此外,复合电极在 10 mV/s 时的最大比电容为 358 F/g,功率密度高达 2.8 KW/Kg。
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