Hu Bing, Zhang Wei-Bin, Yan Kun, Zhang Tong, Li Kai, Chen Xi-Wen, Kang Long, Kong Ling-Bin
State Key Laboratory of Advanced Processing and Recycling of Non-ferrous Metals, Lanzhou University of Technology Lanzhou 730050 P. R. China
School of Materials Science and Engineering, Lanzhou University of Technology Lanzhou 730050 P. R. China.
RSC Adv. 2018 Oct 12;8(61):35083-35093. doi: 10.1039/c8ra05851b. eCollection 2018 Oct 10.
A chemical process was developed to prepare N-doped micro-nano carbon spheres with multi-scale pore structures carbonization of N-PF/PMMA interpenetrating polymer networks, which contain melamine resin as the nitrogen source, PF as the carbon source, and polymethylmethacrylate (PMMA) as the pore-former. The N-content of N-doped micro-nano carbon spheres was controlled by adjusting the mass ratio of melamine and phenol before polymerization. The N-doped micro-nano carbon spheres as electrode materials possess appropriate pore size distribution, higher specific surface area (559 m g) and consistently dispersed nitrogen atoms with adjustable doping content. These distinct characteristics endow the prospective electrode materials with excellent performance in electrochemical capacitors. In particular, N-CS-IPN-4 exhibits the highest specific capacitance of 364 F g at 0.5 A g in 6 M KOH aqueous electrolyte in a three-electrode system. It also possesses superior rate capability (57.7% retention at current densities ranging from 0.5 to 50 A g) and excellent cycling performance at 2 A g (100% retention after 10 000 cycles). All these results confirm that the N-doped micro-nano carbon spheres are promising electrochemical capacitor materials, which possesses the advantages of simple preparation procedure, multi-scale pore structures, higher specific surface areas, easy adjustment of N-content and excellent electrochemical properties.
通过N-PF/PMMA互穿聚合物网络的碳化开发了一种化学工艺来制备具有多尺度孔结构的氮掺杂微纳碳球,该网络包含作为氮源的三聚氰胺树脂、作为碳源的PF和作为致孔剂的聚甲基丙烯酸甲酯(PMMA)。通过调节聚合前三聚氰胺与苯酚的质量比来控制氮掺杂微纳碳球的氮含量。作为电极材料的氮掺杂微纳碳球具有合适的孔径分布、较高的比表面积(559 m²/g)以及掺杂含量可调且均匀分散的氮原子。这些独特的特性使这种有前景的电极材料在电化学电容器中具有优异的性能。特别是,在三电极体系中,N-CS-IPN-4在6 M KOH水溶液电解质中,在0.5 A/g电流密度下表现出最高比电容为364 F/g。它还具有优异的倍率性能(在0.5至50 A/g电流密度范围内保持率为57.7%)以及在2 A/g电流密度下的出色循环性能(10000次循环后保持率为100%)。所有这些结果证实,氮掺杂微纳碳球是很有前景的电化学电容器材料,具有制备过程简单、多尺度孔结构、较高比表面积、氮含量易于调节以及优异电化学性能等优点。