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首页> 外文期刊>RSC Advances >Nitrogen-enriched activated carbons from waste particleboard used as electrode materials for supercapacitors: effects of activating agent on surface characteristics
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Nitrogen-enriched activated carbons from waste particleboard used as electrode materials for supercapacitors: effects of activating agent on surface characteristics

机译:来自废刨花板的富氮活性炭,用作超级电容器的电极材料:活化剂对表面特性的影响

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Nitrogen-enriched activated carbon was prepared from waste particleboard by a chemical activation method, where partially carbonized waste particleboard was treated with KOH in different ratio. The porosity and nitrogen content of the nitrogen-enriched activated carbons depend strongly on the weight ratio of KOH/carbonization. As the weight ratio of KOH/carbonization increases from 2 to 5, the specific surface area increases from 1498 to 1826 m(2) g(-1), while the nitrogen content decreases from 2.86 to 1.32 wt%. These nitrogen-enriched activated carbons are tested as electrode material in two-electrode symmetric supercapacitor system in 7 M KOH electrolyte and found to exhibit high specific capacitance with excellent retention of it at high current density and for long term operation. In particular, the nitrogen-enriched activated carbon prepared with a moderate KOH/carbonization weight ratio of 3, which possesses a balanced specific surface area (1758 m(2) g(-1)) and nitrogen content (2.38 wt%) exhibits the largest specific capacitance of 263 F g(-1) at 0.05 A g(-1), attributed to the co-contribution of double-layer capacitance and pseudo-capacitance. Moreover, it shows excellent rate capability (228 F g(-1) at 10 A g(-1)) and good cycling stability (over 95% capacitance retention over 3000 cycles), making it a promising electrode material for supercapacitors.
机译:采用化学活化法从废料刨花板上制备富氮活性炭,对部分碳化的废料刨花板用不同比例的KOH进行处理。富氮活性炭的孔隙率和氮含量在很大程度上取决于KOH /碳化的重量比。随着KOH /碳化的重量比从2增加到5,比表面积从1498增加到1826 m(2)g(-1),而氮含量从2.86 wt%减少到1.32 wt%。这些富含氮的活性炭已在7 M KOH电解质的两电极对称超级电容器系统中作为电极材料进行测试,发现具有高比电容,并在高电流密度下具有出色的保持力,可长期使用。特别是,以适中的KOH /碳化重量比为3制备的富氮活性炭具有平衡的比表面积(1758 m(2)g(-1))和氮含量(2.38 wt%)。在0.05 A g(-1)时的最大比电容为263 F g(-1),这归因于双层电容和伪电容的共同贡献。此外,它显示出出色的倍率能力(在10 A g(-1)时为228 F g(-1))和良好的循环稳定性(在3000次循环中超过95%的电容保持率),使其成为超级电容器的有希望的电极材料。

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