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首页> 外文期刊>Functional materials letters >Rational synthesis of graphitic porous carbon with high content nitrogen doping via ultra-fast pyrolysis of ZIF-8 for electrochemical capacitor with enhanced performance
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Rational synthesis of graphitic porous carbon with high content nitrogen doping via ultra-fast pyrolysis of ZIF-8 for electrochemical capacitor with enhanced performance

机译:ZIF-8超快速热解法合理合成高含量氮掺杂石墨多孔碳,以增强性能

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摘要

In this work, we proposed an effective strategy to prepare nitrogen-doped popcorn-like porous carbons (NPPCs) via ultra-fast carbonization of zeolitic immidazolate frameworks (ZIFs-8), where the ZIFs-8 acted as carbon precursor as well as the template. The obtained NPPCs possess popcorn-like morphology with large specific surface area of 1243 m(2)/g, total pore volume of 1.48 cm(3)/g and high nitrogen content. Remarkably, the average pore diameter of NPPCs was 4.72 nm, indicating the presence of amount substantial mesopores. As the electrode of supercapacitor, the NPPCs revealed a relatively high specific capacitance of 610.4 F/g in KOH (6 mol/L) at 5 mV/s. Even the scan rate was increased to 50 mV/s, an impressive capacity of 424.8 F/g can be achieved, suggesting good rate capability. Besides, it exhibited outstanding cycling stability with 93% of specific capacitance retention after 10,000 GCD cycles. Moreover, the NPPCs electrode demonstrated high electrochemical performance and stability by designing the coin-type and flexible supercapacitor. The large specific surface area, abundant accessible mesoporosity and novel nanostructure are account for the superior performance.
机译:在这项工作中,我们提出了一种有效的策略,即通过沸石咪唑酸盐骨架(ZIFs-8)的超快碳化来制备氮掺杂的爆米花状多孔碳(NPPC),其中ZIFs-8既是碳的前体,又是碳的前体。模板。获得的NPPC具有类似爆米花的形态,比表面积为1243 m(2)/ g,总孔体积为1.48 cm(3)/ g,氮含量较高。值得注意的是,NPPC的平均孔径为4.72 nm,表明存在大量的中孔。作为超级电容器的电极,NPPC在5 mV / s的KOH(6 mol / L)中显示出相对较高的比电容610.4 F / g。即使将扫描速率提高到50 mV / s,也可以达到424.8 F / g的惊人容量,这表明其良好的速率能力。此外,在10,000次GCD循环后,它具有出色的循环稳定性和93%的比电容保持率。此外,通过设计硬币型和柔性超级电容器,NPPCs电极表现出较高的电化学性能和稳定性。大的比表面积,丰富的可进入的介孔率和新颖的纳米结构是优良性能的原因。

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