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Effect of nitrogen doping on the electrochemical performance of resorcinol-formaldehyde based carbon aerogels as electrode material for supercapacitor applications

机译:氮掺杂对超热醇 - 甲醛基碳气性电化学性能作为超级电容器应用的电极材料的影响

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Nitrogen doped resorcinol/formaldehyde carbon aerogels with controlled nitrogen content are synthesized by controlling the resorcinol/melamine molar ratio (R/M) during the synthesis of aerogel precursors. The carbons were used as electrode materials in an electrochemical capacitor using 6 M KOH solution as electrolyte. All samples exhibited amorphous structure with low degree of graphitization. The maximum specific capacitance of 208 Fg(-1) was observed after doping of the carbon with nitrogen at R/M = 80. Drop in solution and charge transfer resistances from 0.570 to 0.150 and 0.050-0.040 was also observed respectively, with the drop in contact angles from 123 to 103 for the carbon doped with nitrogen at R/M = 80. BET results showed that the pore volume and surface area of carbon increase after N-doping, with a BET surface area of 841 m(2) g(-1) at RIM = 80. This R/M ratio is an optimum ratio at which incorporation of nitrogen into the carbon matrix improves the capacitive performance of cell as a result of improved porosity/wettability/conductivity/active sites of the electrode. Doping at higher nitrogen concentrations (RIM 80) decreased the specific capacitance of the cell significantly due to decreased conductivity of carbon and suppression of the hopping rate of dopant. (C) 2019 Elsevier Ltd. All rights reserved.
机译:通过控制气凝胶前体的合成期间,通过控制间苯二酚/三聚氰胺摩尔比(R / M)来合成具有受控氮含量的氮掺杂的间苯二酚/甲醛碳气凝胶。碳用作电化学电容器中的电极材料,使用6M KOH溶液作为电解质。所有样品都显示出具有低图形化的非晶结构。在r / m = 80下用氮气掺杂碳掺杂碳后,观察到208fg(-1)的最大特异性电容。分别观察到溶液中的溶液和电荷转移电阻从0.570至0.150和0.050-0.040进行。在R / M = 80掺杂氮的碳的接触角度在123至103中掺杂氮气的碳。BET结果表明,N掺杂后的孔体积和表面积碳增加,BET表面积为841m(2)g (-1)在RIM = 80.该R / M比例是最佳比率,即氮气进入碳基质的含量改善了电池的电容性能,导致电极的改进的孔隙率/润湿性/导电/活性位点。由于掺杂剂的跳跃率降低,掺杂较高的氮浓度(轮辋<80)显着降低了细胞的特定电容。 (c)2019 Elsevier Ltd.保留所有权利。

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