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通过共轭交联提高掺杂稳定性的高导电性碳纳米管巴基纸。

Highly conductive carbon nanotube buckypapers with improved doping stability via conjugational cross-linking.

机构信息

High-Performance Materials Institute, Florida State University, 2005 Levy Avenue, Tallahassee, FL 32310, USA.

出版信息

Nanotechnology. 2011 Dec 2;22(48):485708. doi: 10.1088/0957-4484/22/48/485708. Epub 2011 Nov 9.

Abstract

Carbon nanotube (CNT) sheets or buckypapers have demonstrated promising electrical conductivity and mechanical performance. However, their electrical conductivity is still far below the requirements for engineering applications, such as using as a substitute for copper mesh, which is currently used in composite aircraft structures for lightning strike protection. In this study, different CNT buckypapers were stretched to increase their alignment, and then subjected to conjugational cross-linking via chemical functionalization. The conjugationally cross-linked buckypapers (CCL-BPs) demonstrated higher electrical conductivity of up to 6200 S cm( - 1), which is more than one order increase compared to the pristine buckypapers. The CCL-BPs also showed excellent doping stability in over 300 h in atmosphere and were resistant to degradation at elevated temperatures. The tensile strength of the stretched CCL-BPs reached 220 MPa, which is about three times that of pristine buckypapers. We attribute these property improvements to the effective and stable conjugational cross-links of CNTs, which can simultaneously improve the electrical conductivity, doping stability and mechanical properties. Specifically, the electrical conductivity increase resulted from improving the CNT alignment and inter-tube electron transport capability. The conjugational cross-links provide effective 3D conductive paths to increase the mobility of electrons among individual nanotubes. The stable covalent bonding also enhances the thermal stability and load transfer. The significant electrical and mechanical property improvement renders buckypaper a multifunctional material for various applications, such as conducting composites, battery electrodes, capacitors, etc.

摘要

碳纳米管(CNT)片或巴基纸具有优异的导电性和机械性能。然而,其导电性仍远低于工程应用的要求,例如用作目前用于复合飞机结构的雷击保护的铜网的替代品。在这项研究中,不同的 CNT 巴基纸被拉伸以增加其取向,然后通过化学官能化进行共轭交联。共轭交联的巴基纸(CCL-BP)表现出高达 6200 S cm(-1) 的更高导电性,比原始巴基纸增加了一个数量级以上。CCL-BP 在大气中超过 300 小时也表现出出色的掺杂稳定性,并且在高温下不易降解。拉伸的 CCL-BP 的拉伸强度达到 220 MPa,约为原始巴基纸的三倍。我们将这些性能的提高归因于 CNT 的有效和稳定的共轭交联,这可以同时提高导电性、掺杂稳定性和机械性能。具体来说,导电性的提高是由于改善了 CNT 的取向和管间电子传输能力。共轭交联提供了有效的 3D 导电路径,增加了单个纳米管之间电子的迁移率。稳定的共价键合还增强了热稳定性和负载传递。显著的电气和机械性能的提高使巴基纸成为各种应用的多功能材料,如导电复合材料、电池电极、电容器等。

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