Hollow Cobalt Carbide Cubes / Reduced Graphene Oxide Nanocomposite via Cyanide Coordination Polymer for Supercapacitor Applications

Eslam Aboelazm, C. Khe, Muhammad Fadhlullah Abd Shukur, M. S. M. Saheed, Gomaa Abdelgawad Mohammed Ali, K. Chong
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Abstract

Coordination polymers, a broad class of porous hybrid materials resulting from the connection of metal ions with organic ligands, showcase enduring porosity, well-organised crystalline structures, and open metal active sites that augment their metal ions' redox activity. This investigation focuses on examining a nanocomposite composed of cobalt carbide/reduced graphene oxide (Co3C/rGO) prepared through the copolymer method, serving as an electrode material for supercapacitor devices. The nanocomposite's structure and hollow cubic morphology were confirmed through X-ray diffraction, Raman spectroscopy, and field emission scanning electron microscopy (FESEM) analysis. Electrochemical properties were thoroughly assessed using cyclic voltammetry, electrochemical impedance spectroscopy, and galvanostatic charge/discharge in 6M KOH with a voltage window of 0 V to 0.5 V. The Co3C/rGO electrode exhibited notable electrochemical performance, displaying a specific capacitance of 486.6 F g-1 at 1 mV s-1 and a low internal resistance of 0.58 Ω, surpassing existing literature due to its porous morphology. Additionally, to evaluate the nanocomposite's cycling stability, 5000 charge/discharge cycles were conducted, revealing a capacitive retention of 82% of its original capacitance after 5000 cycles. This underscores its excellent long-term durability as a high-performance material for supercapacitor applications.
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用于超级电容器的氰化物配位聚合物空心碳化钴立方体/还原氧化石墨烯纳米复合材料
配位聚合物是由金属离子与有机配体连接而成的一大类多孔杂化材料,具有持久的孔隙率、组织良好的晶体结构和开放的金属活性位点,可增强金属离子的氧化还原活性。本研究的重点是通过共聚法制备一种由碳化钴/还原氧化石墨烯(Co3C/rGO)组成的纳米复合材料,作为超级电容器设备的电极材料。通过 X 射线衍射、拉曼光谱和场发射扫描电子显微镜(FESEM)分析,确认了纳米复合材料的结构和中空立方体形态。利用循环伏安法、电化学阻抗光谱法以及在 6M KOH 中 0 V 至 0.5 V 的电压窗口进行电静态充放电,对电化学特性进行了全面评估。Co3C/rGO 电极表现出显著的电化学性能,在 1 mV s-1 的条件下,比电容为 486.6 F g-1,内阻低至 0.58 Ω,由于其多孔形态,超过了现有文献的研究结果。此外,为了评估纳米复合材料的循环稳定性,还对其进行了 5000 次充电/放电循环,结果表明在 5000 次循环后,其电容保持率为原始电容的 82%。这凸显了其作为超级电容器应用的高性能材料所具有的出色的长期耐用性。
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