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集成在碳纳米纤维纸上用于超级电容器电极的氮掺杂碳纳米线圈阵列

Nitrogen-Doped Carbon Nanocoil Array Integrated on Carbon Nanofiber Paper for Supercapacitor Electrodes.

作者信息

Choi Won Ho, Choi Mi Jin, Bang Jin Ho

机构信息

Department of Bionanotechnology and ‡Department of Chemistry and Applied Chemistry, Hanyang University , 55 Hanyangdaehak-ro, Sangnok-gu, Ansan, Kyeonggi-do 15588, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2015 Sep 2;7(34):19370-81. doi: 10.1021/acsami.5b05527. Epub 2015 Aug 18.

Abstract

Integrating a nanostructured carbon array on a conductive substrate remains a challenging task that presently relies primarily on high-vacuum deposition technology. To overcome the problems associated with current vacuum techniques, we demonstrate the formation of an N-doped carbon array by pyrolysis of a polymer array that was electrochemically grown on carbon fiber paper. The resulting carbon array was investigated for use as a supercapacitor electrode. In-depth surface characterization results revealed that the microtextural properties, surface functionalities, and degree of nitrogen incorporated into the N-doped carbon array can be delicately controlled by manipulating carbonization temperatures. Furthermore, electrochemical measurements showed that subtle changes in these physical properties resulted in significant changes in the capacitive behavior of the N-doped carbon array. Pore structures and nitrogen/oxygen functional groups, which are favorable for charge storage, were formed at low carbonization temperatures. This result showed the importance of having a comprehensive understanding of how the surface characteristics of carbon affect its capacitive performance. When utilized as a substrate in a pseudocapacitive electrode material, the N-doped carbon array maximizes capacitive performance by simultaneously achieving high gravimetric and areal capacitances due to its large surface area and high electrical conductivity.

摘要

在导电基底上集成纳米结构碳阵列仍然是一项具有挑战性的任务,目前主要依赖于高真空沉积技术。为了克服与当前真空技术相关的问题,我们展示了通过对在碳纤维纸上电化学生长的聚合物阵列进行热解来形成氮掺杂碳阵列。对所得的碳阵列用作超级电容器电极进行了研究。深入的表面表征结果表明,通过控制碳化温度,可以精细地控制氮掺杂碳阵列的微观结构性质、表面官能团以及氮的掺入程度。此外,电化学测量表明,这些物理性质的细微变化导致氮掺杂碳阵列的电容行为发生显著变化。在低碳化温度下形成了有利于电荷存储的孔结构和氮/氧官能团。这一结果表明全面了解碳的表面特性如何影响其电容性能的重要性。当用作赝电容电极材料的基底时,氮掺杂碳阵列由于其大表面积和高电导率,通过同时实现高比电容和面积电容,使电容性能最大化。

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