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直接生长碳纳米纤维在金属接触面上生成 3D 多孔平台,以实现氧还原反应。

Direct growth of carbon nanofibers to generate a 3D porous platform on a metal contact to enable an oxygen reduction reaction.

机构信息

School of Engineering, University of California, 5200 N. Lake Road, Merced, California 95343, USA.

出版信息

ACS Nano. 2012 Dec 21;6(12):10720-6. doi: 10.1021/nn303910w. Epub 2012 Dec 4.

Abstract

For carbon nanotube-based electronics to achieve their full performance potential, it is imperative to minimize the contact resistance between macroscale metal contacts and the carbon nanotube (CNT) nanoelectrodes. We have developed a three-dimensional electrode platform that consists of carbon nanofibers (CNFs) that are directly grown on a metal contact, such as copper (Cu). Carbon nanofiber morphology can be tailored by adjusting the annealing time of a thin electrochemically deposited nickel catalyst layer on copper. We demonstrate that increasing the annealing time increases the amount of copper infused into the nickel catalyst layer. This reduces the carbon deposition rate, and consequently a more well-defined CNF 3D architecture can be fabricated. This direct growth of CNFs on a Cu substrate yields an excellent electron transfer pathway, with contact resistance between CNFs and Cu being comparable to that of a Cu-Cu interface. Furthermore, the excellent bonding strength between CNFs and Cu can be maintained over prolonged periods of ultrasonication. The porous 3D platform affixed with intertwined CNFs allows facile surface functionalization. Using a simple solution soaking procedure, the CNF surface has been successfully functionalized with iron(II) phthalocyanine (FePc). FePc functionalized CNFs exhibit excellent oxygen reduction capability, equivalent to platinum-carbon electrodes. This result demonstrates the technological promise of this new 3D electrode platform that can be exploited in other applications that include sensing, battery, and supercapacitors.

摘要

为了使基于碳纳米管的电子学充分发挥其性能潜力,必须将宏观金属接触与碳纳米管(CNT)纳米电极之间的接触电阻最小化。我们开发了一种由直接生长在金属接触(如铜(Cu))上的碳纤维(CNF)组成的三维电极平台。通过调整在铜上电化学沉积的薄镍催化剂层的退火时间,可以调整碳纤维的形态。我们证明,增加退火时间会增加注入镍催化剂层的铜量。这降低了碳沉积速率,从而可以制造出更明确的 CNF 3D 结构。在 Cu 衬底上直接生长 CNF 可提供出色的电子转移途径,CNF 和 Cu 之间的接触电阻可与 Cu-Cu 界面相媲美。此外,CNF 和 Cu 之间的优异结合强度可以在长时间的超声处理中保持。附着有交织的 CNF 的多孔 3D 平台允许进行简便的表面功能化。通过简单的溶液浸泡程序,成功地将 CNF 表面官能化了铁(II)酞菁(FePc)。功能化的 CNF 表现出出色的氧还原能力,与铂碳电极相当。该结果证明了这种新的 3D 电极平台的技术前景,可用于包括传感,电池和超级电容器在内的其他应用。

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