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木质素衍生活性炭作为高性能超级电容器的电极材料

Lignin-Derived Activated Carbon as Electrode Material for High-Performance Supercapacitor.

作者信息

Pan Chenghao, Ji Yongfeng, Ren Suxia, Dong Lili, Lei Tingzhou

机构信息

School of Environmental Science and Engineering, Changzhou University, Changzhou 213164, China.

Institute of Urban & Rural Mining, Changzhou University, Changzhou 213164, China.

出版信息

Molecules. 2024 Dec 29;30(1):89. doi: 10.3390/molecules30010089.

Abstract

Utilizing lignin-derived activated carbon in supercapacitors has emerged as a promising approach to alleviating environmental pollution and promoting the high-value utilization of byproducts in the papermaking industry. In this study, activated carbons (LACs) were prepared using a simple one-step KOH activation approach and by employing enzymatic hydrolysis lignin (EHL). The impact of the KOH activation parameters on the microstructure and capacitive performance of the LACs was investigated by varying the KOH/EHL ratio and activation temperature. The optimized sample LAC showed an interconnected porous structure with a high surface area of 2285 m/g, abundant micropores, and a small number of mesopores, which makes it a suitable electrode material for supercapacitors. The sample LAC demonstrated a high specific capacitance of 291.3 F/g in a three-electrode system. Under a symmetrical supercapacitor electrode system, the specific capacitance of the LAC electrode reached 186.8 F/g at 0.5 A/g. After 10,000 cycles at 20 A/g, the capacitance retention rate remained at 96.1%. The symmetrical supercapacitor also demonstrated a superior energy density of 6.5 Wh/kg. This work provides valuable insights into the transformation of low-value natural biomass derivatives into environmentally friendly, high-performing supercapacitor electrode materials.

摘要

在超级电容器中使用木质素衍生的活性炭已成为一种有前景的方法,可减轻环境污染并促进造纸工业中副产品的高价值利用。在本研究中,采用简单的一步KOH活化法并使用酶解木质素(EHL)制备了活性炭(LACs)。通过改变KOH/EHL比例和活化温度,研究了KOH活化参数对LACs微观结构和电容性能的影响。优化后的样品LAC呈现出相互连接的多孔结构,具有2285 m/g的高比表面积、丰富的微孔和少量的中孔,这使其成为超级电容器的合适电极材料。样品LAC在三电极系统中表现出291.3 F/g的高比电容。在对称超级电容器电极系统下,LAC电极在0.5 A/g时的比电容达到186.8 F/g。在20 A/g下循环10000次后,电容保持率仍为96.1%。该对称超级电容器还展示了6.5 Wh/kg的优异能量密度。这项工作为将低价值天然生物质衍生物转化为环境友好、高性能的超级电容器电极材料提供了有价值的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f68a/11722339/fc01d1dadbaa/molecules-30-00089-g001.jpg

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