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A simple CaCO3-assisted template carbonization method for producing nitrogen doped porous carbons as electrode materials for supercapacitors

机译:一种简单的CaCO3辅助模板碳化方法,用于生产氮掺杂的多孔碳作为超级电容器的电极材料

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A series of nitrogen doped porous carbons are prepared using a simple and economic template carbonization method, in which nano-CaCO3 and ethylenediamine (EDA) and carbon tetrachloride (CTC) serve as a template and nitrogen-containing carbon precursors, respectively. The textural parameters of all the obtained carbon materials are tunable. The porosity and nitrogen content of the nitrogen doped porous carbons strongly depend on the dosage of nano-CaCO3. When the ratio of CaCO3 to the sum weight of EDA and CTC increases from 0.2 to 0.4, the specific surface area increases from 783.72 to 2535.09 m(2) g(-1), meanwhile the nitrogen content decreases from 16.13 to 9.47 wt%. While when the ratio of CaCO3 to the sum weight of EDA and CTC is moderate, the as-prepared nitrogen doped porous carbons (NPC-0.3) contains as high as 13.45 wt% of nitrogen has a balanced specific surface areas of 1276.14 m(2) g(-1), exhibits the largest specific capacitance of 226 Fg(-1), at a current density of 0.1 A g(-1), in 1 M H2SO4 aqueous electrolyte, due to the co-contribution of double layer capacitance and pseudo capacitance. Additionally, it shows excellent rate capability (capacitance retention ratio of 58.4% at a current density of 30 A g(-)1) and good cycling stability (no capacitance decay over 10 000 charge discharge cycles), making it a promising electrode material for supercapacitors. (C) 2015 Elsevier Ltd. All rights reserved.
机译:使用简单且经济的模板碳化方法制备了一系列氮掺杂多孔碳,其中纳米CaCO3和乙二胺(EDA)和四氯化碳(CTC)分别用作模板和含氮碳前体。所有获得的碳材料的质地参数都是可调的。氮掺杂多孔碳的孔隙率和氮含量在很大程度上取决于纳米CaCO3的用量。当CaCO3与EDA和CTC的总重量之比从0.2增加到0.4时,比表面积从783.72增加到2535.09 m(2)g(-1),同时氮含量从16.13减少到9.47 wt%。当CaCO3与EDA和CTC的总重量之比适中时,制得的氮掺杂多孔碳(NPC-0.3)含有高达13.45 wt%的氮,平衡比表面积为1276.14 m(2 )g(-1)由于双层电容的共同贡献,在1 M H2SO4水性电解质中,在0.1 A g(-1)的电流密度下表现出最大的226 Fg(-1)的比电容和伪电容。此外,它还具有出色的倍率能力(在30 A g(-)1的电流密度下电容保持率为58.4%)和良好的循环稳定性(在1万次电荷放电循环中无电容衰减),使其成为一种有前途的电极材料超级电容器。 (C)2015 Elsevier Ltd.保留所有权利。

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