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Preparation of nitrogen-doped macro-/mesoporous carbon foams as electrode material for supercapacitors

机译:制备氮掺杂的大/介孔碳泡沫作为超级电容器的电极材料

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摘要

An oil-in-water (O/W) emulsion system of Span 80-Tween 80/1iquid paraffin/aqueous resorcinol-formaldehyde was manufactured. Nitrogen-doped macro-/mesoporous carbon foams (N-MMCFs) were prepared by the polymerization of this O/W emulsion, followed by carbonization and activation process. As-prepared N-MMCFs were characterized by scanning electron microscopy, infrared (IR) spectra, N _2 adsorption and desorption analysis, and electrochemical workstation. The results indicate that the N-MMCFs have main macropore of 0.2μm, mesopore of 2.6-4.0nm and specific surface areas of 1205-1808m ~2g ~(-1). The contact angle of N-MMCFs for water is about 37.5°, obviously lower than that of MMCFs (72.9°), which suggests that the surface wettability of N-MMCFs is greatly improved due to the incorporation of nitrogen into the carbon framework. Electrochemical measurements show that specific capacitance of a typical N-MMCF as electrode material in 6M KOH aqueous solution is as high as 198Fg ~(-1) at a current density of 1.0Ag ~(-1). Its specific capacitance can still remain 159Fg ~(-1) at a high loading current density of 20.0Ag ~(-1) with the retention of 80.3%, which indicates that the typical N-MMCF as electrode material has a good rate capability. The high current charge and discharge capability offers the promising prospects for the application of N-MMCFs as electrode materials in supercapacitors which could meet the need of high power density
机译:制造了Span 80-Tween 80/1液体石蜡/间苯二酚-甲醛水溶液的水包油(O / W)乳液体系。通过将该O / W乳液聚合,然后进行碳化和活化过程,可制得氮掺杂的大/中碳碳泡沫(N-MMCFs)。通过扫描电子显微镜,红外光谱,N _2吸附和解吸分析以及电化学工作站对制备的N-MMCF进行表征。结果表明,N-MMCFs的主要大孔为0.2μm,中孔为2.6-4.0nm,比表面积为1205-1808m〜2g〜(-1)。 N-MMCFs与水的接触角约为37.5°,明显低于MMCFs(72.9°),这表明由于将氮掺入碳骨架中,N-MMCFs的表面润湿性大大提高。电化学测量表明,典型的N-MMCF作为电极材料在6M KOH水溶液中的比电容在1.0Ag〜(-1)的电流密度下高达198Fg〜(-1)。在20.0Ag〜(-1)的高负载电流密度下,其比电容仍可保持159Fg〜(-1),保持率为80.3%,这表明作为电极材料的典型N-MMCF具有良好的倍率性能。高电流充电和放电能力为将N-MMCF用作超级电容器中的电极材料提供了可满足高功率密度需求的有前途的前景

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