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Synthesis of Mesoporous Carbons with Controllable N-Content and Their Supercapacitor Properties

机译:N含量可控的介孔碳的合成及其超级电容器性能

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A synthesis route to ordered mesoporous carbons with controllable nitrogen content has been developed for high-performance EDLC electrodes. Nitrogen-doped ordered mesoporous carbons (denoted as NMC) were prepared by carbonizing a mixture of two different carbon sources within the mesoporous silica designated by KIT-6. Furfuryl alcohol was used as a primary carbon precursor, and melamine as a nitrogen dopant. This synthesis procedure gave cubic Ia3d mesoporous carbons containing nitrogen as much as 13%. The carbon exhibited a narrow pore size distribution centered at 3-4 nm with large pore volume (0.6-1 cm~3 g~(-1)) and high specific BET surface area (700-1000 m~2g~(-1)). Electrochemical behaviors of the NMC samples with various N-contents were investigated by a two-electrode measurement system at aqueous solutions. At low current density, the NMC exhibited markedly increasing capacitance due to the increase in the nitrogen content. This result could be attributed to the enhanced surface affinity between carbon electrode and electrolyte ions due to the hydrophilic nitrogen functional groups. At high current density conditions, the NMC samples exhibited decreasing specific capacitance against the increase in the nitrogen content. The loss of the capacitance with the N-content may be explained by high electric resistance which causes a significant IR drop at high current densities. The present results indicate that the optimal nitrogen content is required for achieving high power and high energy density simultaneously.
机译:已经为高性能EDLC电极开发了一种合成路线,以合成具有一定氮含量的有序介孔碳。氮掺杂有序介孔碳(表示为NMC)是通过将两种不同碳源的混合物在KIT-6指定的介孔二氧化硅中碳化而制得的。糠醇用作主要的碳前体,三聚氰胺用作氮掺杂剂。该合成过程产生了含氮高达13%的立方Ia3d介孔碳。碳表现出以3-4 nm为中心的窄孔径分布,具有大的孔体积(0.6-1 cm〜3 g〜(-1))和高的BET比表面积(700-1000 m〜2g〜(-1)) )。通过双电极测量系统在水溶液中研究了N含量不同的NMC样品的电化学行为。在低电流密度下,由于氮含量的增加,NMC的电容显着增加。该结果可以归因于碳电极和电解质离子之间由于亲水氮官能团而增强的表面亲和力。在高电流密度条件下,NMC样品显示出随氮含量增加而降低的比电容。具有N含量的电容损失可以用高电阻来解释,该电阻会在高电流密度下引起明显的IR下降。目前的结果表明,要同时获得高功率和高能量密度,需要最佳氮含量。

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