Performance Optimization of Supercapbattery with Porous Modification on Silicon as Anode and Cathode Based on Al2O3/CuCrO2

Ade Siyanti Nurul Hidayah, Markus Diantoro, Nasikhudin Nasikhudin, Siti Sendari, Nuviya Illa Muthi Aturroifah, W. Meevasana, S. Maensiri
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Abstract

The development of the supercapbattery has become the focus of energy storage research due to their potential to increase energy and power density. This research is focused on developing a modification of silicon (Si) porous as an anode with Al2O3/CuCrO2/AC composite as a cathode of supercapacitor. These electrodes were synthesized using LA133 binder with deionized water as solvent. The supercapacitor electrode uses an aluminum foil substrate, while the Si electrode uses a cupper foil substrate. The structural and morphological characterization of the electrodes were identified through XRD, FTIR, and SEM tests, while the electrochemical performance characterization using Galvanostatic Charge-Discharge (GCD) instruments. The results of XRD data analysis of thin film electrodes of supercapacitor showed diffraction peaks which indicated the phases Al2O3/CuCrO2/AC and Si porous. The absorption functional groups of Al2O3/CuCrO2/AC and Si porous were identified through FTIR characterization. The results of SEM showed the addition of CuCrO2 and structure modification of silicon into porous caused increasing value of porosity. The electrochemical performance of the optimum point at Al2O3/CuCrO2/AC condition, showing a specific capacitance of 50.3 F/g, an energy density of 36.499 Wh/kg, and a power density of 433.6 W/kg. The combination of Al2O3/CuCrO2/AC//Si Porous 16 for supercapbattery devices shows performance with a specific capacitance of 14.4 F/g, an energy density of 6.1 Wh/kg, and a power density of 33.6 W/kg. These results indicate an increase in electrochemical performance compared with Si anodes without modification.
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基于 Al2O3/CuCrO2 的硅多孔改性正负极超级电容器的性能优化
超级电容电池具有提高能量和功率密度的潜力,因此其开发已成为储能研究的重点。本研究的重点是开发一种改性多孔硅(Si)作为阳极、Al2O3/CuCrO2/AC 复合材料作为阴极的超级电容器。这些电极是用 LA133 粘合剂和去离子水作为溶剂合成的。超级电容器电极使用铝箔基底,而硅电极使用铜箔基底。电极的结构和形态特征通过 XRD、傅立叶变换红外光谱(FTIR)和扫描电子显微镜(SEM)测试确定,而电化学性能特征则通过静电充放电(GCD)仪器确定。超级电容器薄膜电极的 XRD 数据分析结果表明,衍射峰显示出 Al2O3/CuCrO2/AC 和 Si 多孔相。通过傅立叶变换红外光谱分析,确定了 Al2O3/CuCrO2/AC 和多孔硅的吸收官能团。扫描电镜的结果表明,CuCrO2 的添加和硅的多孔结构改性使孔隙率不断增加。在 Al2O3/CuCrO2/AC 条件下,电化学性能达到最佳点,比电容为 50.3 F/g,能量密度为 36.499 Wh/kg,功率密度为 433.6 W/kg。将 Al2O3/CuCrO2/AC//Si Porous 16 组合用于超级电容器电池装置的性能表现为:比电容为 14.4 F/g,能量密度为 6.1 Wh/kg,功率密度为 33.6 W/kg。这些结果表明,与未经改性的硅阳极相比,电化学性能有所提高。
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