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基于磺化和氧化铜功能化的生物质废料制备中孔碳颗粒作为超级电容器的高效稳定电极材料。

Mesoporous carbon particles by biomass waste based on sulfonation and copper oxide functionalization as efficient and stable electrode material for supercapacitor.

机构信息

Arts and Sciences Faculty, Chemistry Department, Batman University, Batman, Turkey.

Health Science Faculty, Chemistry Department, Siirt University, Siirt, Turkey.

出版信息

Environ Sci Pollut Res Int. 2024 Aug;31(39):52511-52522. doi: 10.1007/s11356-024-34710-y. Epub 2024 Aug 16.

DOI:10.1007/s11356-024-34710-y
PMID:39147899
Abstract

Here, the hierarchical mesoporous-activated carbon particles obtained by KOH activation from pistachio shell wastes are modified by both the sulfonation process and CuO doping by hydrothermal heating (CuO@S-doped PSAC) for use as a supercapacitor. It is predicted that the electrochemical performance of the porous carbon electrode material obtained by such CuO doping and sulfonation process will be significantly increased with increased Faradaic capacitance. The electrochemical performance of CuO@S doped PSAC composite is systematically investigated by electrochemical impedance spectroscopy (EIS), cyclic voltammetry (CV), and galvanostatic charge/discharge (GCD) in the presence of 1 M HSO, 1 M NaSO, and 1 M NaOH as electrolytes. The CuO@S doped PSAC-based electrode shows excellent stability with high specific capacitance up to 397.16 F/g at 0.1 A/g and 92.64% retention. Furthermore, FTIR, SEM, XRD, EDS, and nitrogen adsorption/desorption analyses are used for the characterisation of the obtained composites. Based on a significant supercapacitor performance, the synthesis strategy of carbon-based electrode material containing sulfonation and CuO modifications derived from agricultural biomass waste material is predicted to be a valuable example.

摘要

在此,通过 KOH 活化从开心果壳废物中获得的分级介孔活性炭颗粒通过磺化过程和水热加热掺杂 CuO(CuO@S 掺杂 PSAC)进行改性,用作超级电容器。预计通过这种 CuO 掺杂和磺化处理获得的多孔碳电极材料的电化学性能将显著提高,法拉第电容增加。通过电化学阻抗谱(EIS)、循环伏安法(CV)和恒电流充放电(GCD)在 1 M HSO、1 M NaSO 和 1 M NaOH 作为电解质的情况下,系统地研究了 CuO@S 掺杂 PSAC 复合材料的电化学性能。基于 CuO@S 掺杂的 PSAC 的电极表现出优异的稳定性,在 0.1 A/g 时具有高达 397.16 F/g 的高比电容和 92.64%的保持率。此外,还使用 FTIR、SEM、XRD、EDS 和氮气吸附/解吸分析对所得复合材料进行了表征。基于超级电容器的优异性能,预计源自农业生物质废物的含磺化和 CuO 改性的碳基电极材料的合成策略将是一个有价值的范例。

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