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Structure Control of Nitrogen-Rich Graphene Nanosheets Using Hydrothermal Treatment and Formaldehyde Polymerization for Supercapacitors

机译:水热处理和甲醛聚合用于超级电容器的富氮石墨烯纳米片的结构控制

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摘要

Nitrogen-rich graphene nanosheets (NGN) with intentionally crumpled, stacked, and cross-linked sheet structures were developed using hydrothermal and/or formaldehyde polymerization processes. It is revealed that the hydrothermal treatment produced crumpled NGN (6.0 at% N) with a high surface area of 383 m(2).g(-1). In contrast, the formaldehyde polymerization process yielded stacked NGN (11.3 at% N) with very low surface area. The combination of formaldehyde polymerization synthesis with hydro thermal treatment led to NGN (14.7 at% N) with a cross-linked structure and a moderate surface area of 88 m(2).g(-1). Interestingly, this cross-linked NGN exhibited the best electrochemical performance compared with other NGN, with a remarkable specific capacitance of 201 F.g(-1) at 0.05 kg(-1) in 1 M H2SO4 electrolyte, and an excellent retention rate of 96.2% of the initial capacitance after 10 000 charge-discharge cycles at a current density of 5 kg(-1) was achieved.
机译:使用水热和/或甲醛聚合工艺开发了具有故意皱缩,堆叠和交联的片状结构的富氮石墨烯纳米片(NGN)。结果表明,水热处理产生的皱纹NGN(N含量为6.0 at%)具有383 m(2).g(-1)的高表面积。相反,甲醛聚合过程产生的叠层NGN(N为11.3 at%)具有非常低的表面积。甲醛聚合合成与加氢热处理的结合导致NGN(14.7 at%N)具有交联结构和中等表面积88 m(2).g(-1)。有趣的是,与其他NGN相比,这种交联的NGN表现出最佳的电化学性能,在1 M H2SO4电解质中,在0.05 kg(-1)时具有201 Fg(-1)的显着比电容,出色的保留率为96.2%在5 kg(-1)的电流密度下进行10000次充放电循环后,获得了初始电容的最大值。

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