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Cobalt Sulfide-Graphene (CoSG) Composite based Electrochemical Double Layer Capacitors

机译:基于钴硫化物 - 石墨烯(COSG)复合材料电化学双层电容器

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Electrochemical Double Layer Capacitors, EDLC, using Cobalt sulfide-Graphene (CoSG) composite electrodes, were fabricated and the storage process was studied. CoSG composite was prepared by a simple chemical route. X-ray diffraction (XRD), Fourier Transform Infrared Spectroscopy (FTIR), Thermogravimetric Analysis (TGA) and Field Emission Scanning Electron microscopy (FESEM) were used to characterized the as prepared composites which indicated formation of Co S phase. Solutions of perfluorosulfonic acid and Polyvinylidene Fluoride (PVDF) were used as electrode binding material. The storage capacitance of the composites were studied in 1M KCl and 6M KOH electrolytes using standard electrochemical techniques like cyclic voltammetry, CV, electrochemical impedance spectroscopy, EIS, and discharge profiles. The capacitance was estimated for various binder concentrations for both the electrolytes. The concentration of perflurosulfonic acid binder of 0.8 wt% and PVDF of 0.04 wt% showed optimized specific capacitances of 657.8 F/gm and 1418.8 F/g, respectively. Some of the problems in storage density in activated carbon, like varying micro or meso pores, poor ion mobility due to varying pore distribution, low electrical conductivity, can be overcome by using Graphene and composites of Graphene. Graphene in various structural nomenclatures have been used by different groups for charge storage. Optimization of the electrode structure in terms of blend percentage, binder content and interface character in the frequency and time domain provides insights to the double layer interface structure.
机译:使用钴硫醚 - 石墨烯(COSG)复合电极的电化学双层电容器EDLC进行了制造,并研究了储存过程。 COSG复合材料通过简单的化学途径制备。 X射线衍射(XRD),傅里叶变换红外光谱(FTIR),热重分析(TGA)和场发射扫描电子显微镜(FESEM)用于表征为表明形成CO S相的制备复合材料。使用全氟磺酸和聚偏二氟乙烯(PVDF)的溶液用作电极结合材料。使用标准电化学技术在1M KCl和6M KOH电解质中研究了复合材料的存储电容,如循环伏安法,CV,电化学阻抗光谱,EIS和排出型材等标准电化学技术。估计电解质的各种粘合剂浓度的电容。 0.8wt%的perflosulfonic酸粘合剂的浓度为0.04wt%,0.04wt%,分别为657.8f / gm的优化特异性电容和1418.8 f / g。通过使用石墨烯和石墨烯复合材料,活性炭中的储存密度在活性炭中的储存密度存在于活性炭中的一些问题,可以克服低导电性低导电性。各种结构命名法中的石墨烯已被不同的组用于电荷储存。在频率和时域中的混合百分比,粘合剂含量和接口字符方面优化电极结构为双层界面结构提供了见解。

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