微波合成磷酸镁-rGO 作为超级电容器应用的有效电极

S. M. Eliyas, R. Yuvakkumar, Ganesan Ravi, S. A. Metha
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摘要

基于过渡金属磷酸盐的材料正被用于能量存储,因为与其他过渡金属相比,P-O 共价键有利于更多的存储,这种共价键提高了超级电容器应用的电化学性能。通过微波合成法合成了纯磷酸镁(Mg3(PO4)2)与 rGO 的复合材料(MgPO-XrGO),X=25、50、75、100 毫克。对制备的复合材料进行了 XRD、拉曼、傅立叶变换红外光谱、扫描电镜和 XPS 研究。使用 Biologic SP-150 和 2M (H2SO4) 作为电解液,对所制备电极的三个电极系统进行了电化学研究(CV、EIS、GCD)。XRD 结果表明,MgPO 为三菱结构(JCPDS 卡 #35-0329),rGO 提高了 MgPO 复合材料的结晶度。拉曼分析确定了 rGO 在复合 MgPO 中的良好石墨化性质,XPS 分析则分析了元素的化学成分。获得了 PO 4 3 - ${\text{PO}}_{4}^{3-}$ (γ 1,γ 3,γ 4) 的傅立叶变换红外基本振动模式。对制备的材料(如纯材料和复合材料)进行的电化学分析表明,它们具有更好的性能。由于 MgPO 与 rGO 高度配位,因此 MgPO-50rGO 获得了较高的比电容。由于 Mg2+ 的氧化态与其他土金属相比具有较高的化学反应活性,另一个优势是 P-O 共价键提高了电极的性能。利用这些优势,将 rGO 作为复合材料来开发电极,有利于实际应用。通过使用最佳水平的 rGO 与 MgPO4-50rGO 复合,成功开发出了一种更好的超级电容器应用新候选材料。所制造的 MgPO-50rGO//Activate carbon 全电池装置在 1 Ag-1 条件下显示出 61 Fg-1 的比电容、21.7 Wh kg-1 的能量密度和 790.0 W kg-1 的功率密度,并在 2 个电极全电池装置的 5000 次循环稳定性中实现了 99.1 % 的出色电容保持率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microwave synthesis of magnesium phosphate-rGO as an effective electrode for supercapacitor application
Transition metal phosphate based materials is being used for energy storage because of P–O covalent bond which facilitates more storage compared to other transition metals and this covalent bond enhanced the electrochemical performance for supercapacitor applications. Pure magnesium phosphate (Mg3(PO4)2) were synthesized via microwave synthesis as the composite varies with rGO (MgPO-XrGO) X=25,50,75,100mg. The prepared composite materials were examined employing XRD, Raman, FT-IR, SEM and XPS studies. Electrochemical studies (CV, EIS, GCD) of three electrode system for the prepared electrodes were performed using Biologic SP-150 with 2M (H2SO4) as electrolyte. From the XRD results, triclinic structured MgPO was confirmed (JCPDS card #35–0329) and rGO has enhanced the crystallinity of MgPO composite. From Raman analyses, the well graphitization nature of rGO in composite MgPO was identified and from XPS analysis chemical composition of the elements was analyzed. The FT-IR fundamental modes of vibrations of PO 4 3 − ${\text{PO}}_{4}^{3-}$ (γ 1,γ 3,γ 4) were obtained. The electrochemical analysis of the prepared material such as pure and composite materials showed better performance. The high specific capacitance was obtained for MgPO-50rGO because MgPO has high coordination with rGO. As Mg2+ oxidation state has high chemical reactivity compared to other earth metals and other advantage is P–O covalent bond that enhanced the performance of the electrode. By facilitating these advantages, rGO is included as composite to develop the electrode to favor the practical applications. By using the optimum level rGO composite with MgPO4-50rGO a better new candidate was successfully developed for supercapacitor applications. The fabricated MgPO-50rGO//Activate carbon full cell set up exhibited the specific capacitance 61 Fg−1 at 1 Ag−1, 21.7 Wh kg−1 energy density and 790.0 W kg−1 power densities and explored outstanding capacitive retention in 2 electrode full cell setup cyclic stability of 99.1 % over the 5000 cycles.
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