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Synthesis of mesoporous carbon spheres with a hierarchical pore structure for the electrochemical double-layer capacitor

机译:具有分层孔结构的电化学双层电容器介孔碳球的合成

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Mesoporous carbon spheres with hierarchical foam-like pore structures have been synthesized by a dual-templating strategy using phenolic resol as a carbon source, Pluronic F127 and spherical silica mesocellular foams (Si-MCFs) as the soft and hard template, respectively. The results show that the morphology and mesostructure of the silica template are faithfully replicated. The obtained mesoporous carbon material with spherical diameter size of ca. 3-5 nm exhibits hierarchical pore sizes (from ca. 3.5 to 60 nm), high specific surface area (1320 m~2/g) and large pore volume (3.5 cm~3/g). The carbon surface contains plenty of oxygen-containing groups, resulting in hydrophilic property for an electrode material. In addition, Pluronic F127 plays an important role in the synthesis for maintaining the foam-like mesostructure of the silica templates and faithful replication of the spherical morphology. The electrochemical measurements show that the hierarchically mesoporous carbon spheres as an electrochemical double-layer capacitor (EDLC) electrode present a long cyclic life, excellent rate capability, and high specific capacitance as ca. 208 F/g at 0.5 A/g in (2.0 M) H2SO4 aqueous solution. Its specific capacitance can still remain ca. 146 F/g at a high loading current density of 30 A/g with the retention of ca. 70%. Furthermore, this material also exhibits excellent capacitive performance in (C2H5)4NBF4/propylene carbonate electrolyte, and its specific capacitance is 97 F/g at loading current density of 0.5 A/g.
机译:通过使用酚醛甲阶酚醛树脂作为碳源,Pluronic F127和球形二氧化硅介孔泡沫(Si-MCFs)分别作为软模板和硬模板的双重模板策略,合成了具有分层泡沫状孔结构的中孔碳球。结果表明,二氧化硅模板的形态和​​介观结构得到了忠实的复制。所获得的中孔碳材料的球形直径尺寸约为1。 3-5 nm表现出分级的孔径(约3.5至60 nm),高的比表面积(1320 m〜2 / g)和大的孔体积(3.5 cm〜3 / g)。碳表面含有大量的含氧基团,从而导致电极材料具有亲水性。此外,Pluronic F127在合成过程中起着重要作用,以维持二氧化硅模板的泡沫状介观结构和忠实复制球形形态。电化学测量表明,作为介电双层电容器(EDLC)电极的分层介孔碳球具有较长的循环寿命,优异的倍率能力和高的比电容,约为ca。 (2.0 M)H2SO4水溶液中0.5 A / g时为208 F / g。其比电容仍可保持约。在30 A / g的高负载电流密度下为146 F / g,并且保留了约。 70%。此外,该材料在(C2H5)4NBF4 /碳酸亚丙酯电解质中也表现出出色的电容性能,并且在0.5 A / g的负载电流密度下其比电容为97 F / g。

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