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首页> 外文期刊>Bulletin of the Korean Chemical Society >Efficient and Facile Fabrication of Hierarchical Carbon Foams with Abundant Nanoscale Pores for Use in Supercapacitors
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Efficient and Facile Fabrication of Hierarchical Carbon Foams with Abundant Nanoscale Pores for Use in Supercapacitors

机译:高效,方便地制造用于超级电容器的具有丰富纳米级孔的分层碳泡沫

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Hierarchical carbon foams (HCFs) with microa??, mesoa??, and macropores were successfully synthesized via a twoa??step process (1) polymerization in oila??ina??water (O/W) emulsions without any hard templates and (2) carbonization at 850?°C. With the aim of both enhancing the stability of the emulsion and forming a microa?? and mesoporous structure during the carbonization process, potassium citrate was introduced in an aqueous solution of resorcinol and formaldehyde. A series of HCFs were fabricated by changing the mass ratio of potassium citrate to total carbon sources from 0.25 to 1.5. The effect of potassium citrate on the porous structure of HCFs was investigated through nitrogen sorption tests. The prepared HCFs exhibited wella??developed porous structures of microa??, mesoa?? and macropores and high surface areas. The structural characteristics of the HCFs, including pore size distribution, surface area, and porosity, were significantly dependent on the amount of potassium citrate. It was concluded that potassium citrate greatly contributed to the formation of carbon foams with nanoa??sized pore structures and high porosity. Interestingly, it was found that when the mass ratio of potassium citrate to total carbon sources was 0.5, the HCFs showed the highest specific surface area (~1360 m2/g). Furthermore, the capacitive performances of the HCFs were evaluated in a 6.0 M KOH aqueous solution using typical electrochemical methods such as cyclic voltammetry and galvanostatic charge/discharge tests. The capacitance of the HCFs tended to increase with the increase in surface area. In particular, the HCFs with the highest surface area also exhibited excellent electrochemical properties (high capacitance of 224 F/g at 1.0 A/g, high rate capability of 191 F/g at 10.0 A/g). These features may be attributed to both the resulting interconnected pore structure that is easily accessible to ions and the high surface area. We believe that this synthesis strategy can be easily extended to the preparation of hierarchical porous carbon materials with a desirable pore structure by tuning the organic monomer.
机译:通过两步法(1)在没有任何硬模板的油水和水(O / W)乳液中聚合,成功地合成了具有微米级,中级级和大孔级的碳泡沫(HCF)。 (2)在850℃下碳化。为了既提高乳液的稳定性又形成微粉?由于在碳化过程中具有介孔结构,因此将柠檬酸钾引入间苯二酚和甲醛的水溶液中。通过将柠檬酸钾与总碳源的质量比从0.25更改为1.5来制造一系列HCF。通过氮吸附试验研究了柠檬酸钾对HCFs多孔结构的影响。制备的HCFs表现出良好的微孔结构,即微孔结构,中孔结构。大孔和高表面积。 HCF的结构特征(包括孔径分布,表面积和孔隙率)显着取决于柠檬酸钾的量。结论是柠檬酸钾极大地促进了具有纳米级孔结构和高孔隙率的碳泡沫的形成。有趣的是,发现柠檬酸钾与总碳源的质量比为0.5时,HCF的比表面积最高(〜1360 m2 / g)。此外,使用典型的电化学方法,例如循环伏安法和恒电流充电/放电测试,在6.0 M KOH水溶液中评估了HCF的电容性能。 HCF的电容倾向于随表面积的增加而增加。特别地,具有最高表面积的HCF还表现出优异的电化学性能(1.0 A / g时的高电容为224 F / g,10.0 A / g时的高倍容量为191 F / g)。这些特征可归因于离子容易到达的所得互连孔结构和高表面积。我们相信,通过调节有机单体,该合成策略可以容易地扩展到制备具有所需孔结构的分级多孔碳材料。

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