Biochar for supercapacitor electrodes: Mechanisms in aqueous electrolytes

Caiyu Ma, Longnian Tang, Haiyun Cheng, Zhuangnan Li, Wenyao Li, Guanjie He
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Abstract

The utilization of biomass materials that contain abundant carbon–oxygen/nitrogen functional groups as precursors for the synthesis of carbon materials presents a promising approach for energy storage and conversion applications. Porous carbon materials derived from biomass are commonly employed as electric-double-layer capacitors in aqueous electrolytes. However, there is a lack of detailed discussion and clarification regarding the kinetics analysis and energy storage mechanisms associated with these materials. This study focuses on the modification of starch powders through the KOH activation process, resulting in the production of porous carbon with tunable nitrogen/oxygen functional groups. The kinetics and energy storage mechanism of this particular material in both acid and alkaline aqueous electrolytes are investigated using in situ attenuated total reflectance-infrared in a three-electrode configuration.

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用于超级电容器电极的生物炭:水性电解质中的机理
利用含有丰富碳-氧/氮官能团的生物质材料作为合成碳材料的前体,是一种前景广阔的能量储存和转换应用方法。从生物质中提取的多孔碳材料通常被用作水性电解质中的双层电容器。然而,关于这些材料的动力学分析和储能机制还缺乏详细的讨论和说明。本研究的重点是通过 KOH 活化工艺对淀粉粉末进行改性,从而制备出具有可调氮/氧官能团的多孔碳。在三电极配置中,使用原位衰减全反射红外技术研究了这种特殊材料在酸性和碱性水溶液电解质中的动力学和能量存储机制。
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