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Biomass-derived highly porous nitrogen-doped graphene orderly supported NiMn_2O_4 nanocrystals as efficient electrode materials for asymmetric supercapacitors

机译:生物质衍生的高孔隙度氮掺杂石墨烯有序负载的NiMn_2O_4纳米晶体作为不对称超级电容器的有效电极材料

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Herein, three-dimensional N-doped porous graphene materials (3DPNG) are successfully synthesized by potassium ferrate (K2FeO4) activation and graphitization using biomass-loofah as carbon source and dicyandiamide as nitrogen source. Furthermore, the mesoporous structure and defects on the surface of 3DPNG can regulate the in-situ growth of NiMn2O4 nanocrystals formation NiMn2O4/3DPNG composite and achieve conductive networks effectively, which not only make electrolyte ions contact with internal NiMn2O4 nanoparticles, but also provide a good electron transport path for electrochemical reaction. Detailed electrochemical characterization indicate that the NiMn2O4/3DPNG electrode exhibits a specific capacitance as high as 1308.2 F g(-1) at a current density of 1 A g(-1), demonstrates good rate characteristics of 77.9% when current density increased to 15 A g(-1). The calculation of contribution rate of pseudocapacitance demonstrate that the behavior of electrode is combining diffusion property and pseudocapacitive property. Besides, a asymmetric supercapacitor (ASC) is assembled using NiMn2O4/3DPNG as positive electrode, 3DPNG as negative electrode, which displays excellent cyclic stability (91.6% retention after 10,000 cycles) and high energy density (45.25 Wh kg(-1) at the power density of 11380 W kg(1)), implying the great potential application of biomass-derived carbon materials in supercapacitors.
机译:本文以生物质丝瓜络为碳源,双氰胺为氮源,通过高铁酸钾(K2FeO4)的活化和石墨化,成功地合成了三维N掺杂多孔石墨烯材料(3DPNG)。此外,3DPNG表面的介孔结构和缺陷可以调节NiMn2O4纳米晶体形成NiMn2O4 / 3DPNG复合材料的原位生长并有效地形成导电网络,这不仅使电解质离子与内部NiMn2O4纳米粒子接触,而且提供了良好的导电性。电化学反应的电子传输路径。详细的电化学特性表明,NiMn2O4 / 3DPNG电极在1 A g(-1)的电流密度下表现出高达1308.2 F g(-1)的比电容,当电流密度增加至15时表现出77.9%的良好速率特性g(-1)。拟电容贡献率的计算表明,电极的行为是扩散性能和拟电容性能的结合。此外,以NiMn2O4 / 3DPNG为正极,3DPNG为负极组装了不对称超级电容器(ASC),它具有出色的循环稳定性(10,000次循环后的保持力为91.6%)和高的能量密度(45.25 Wh kg(-1))。功率密度为11380 W kg(1)),这暗示了生物质衍生的碳材料在超级电容器中的巨大潜力。

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