Feng Lichao, Xie Ning, Zhong Jing
School of Mechanical Engineering, Huaihai Institute of Technology, Lianyungang 22205, Jiangsu, China.
Harbin Institute of Technology, Harbin 150001, Heilongjiang, China.
Materials (Basel). 2014 May 15;7(5):3919-3945. doi: 10.3390/ma7053919.
Carbon nanofiber (CNF), as one of the most important members of carbon fibers, has been investigated in both fundamental scientific research and practical applications. CNF composites are able to be applied as promising materials in many fields, such as electrical devices, electrode materials for batteries and supercapacitors and as sensors. In these applications, the electrical conductivity is always the first priority need to be considered. In fact, the electrical property of CNF composites largely counts on the dispersion and percolation status of CNFs in matrix materials. In this review, the electrical transport phenomenon of CNF composites is systematically summarized based on percolation theory. The effects of the aspect ratio, percolation backbone structure and fractal characteristics of CNFs and the non-universality of the percolation critical exponents on the electrical properties are systematically reviewed. Apart from the electrical property, the thermal conductivity and mechanical properties of CNF composites are briefly reviewed, as well. In addition, the preparation methods of CNFs, including catalytic chemical vapor deposition growth and electrospinning, and the preparation methods of CNF composites, including the melt mixing and solution process, are briefly introduced. Finally, their applications as sensors and electrode materials are described in this review article.
碳纳米纤维(CNF)作为碳纤维最重要的成员之一,已在基础科学研究和实际应用中得到研究。CNF复合材料能够作为有前景的材料应用于许多领域,如电子器件、电池和超级电容器的电极材料以及传感器。在这些应用中,电导率始终是首先需要考虑的因素。事实上,CNF复合材料的电学性能在很大程度上取决于CNF在基体材料中的分散和渗流状态。在这篇综述中,基于渗流理论系统地总结了CNF复合材料的电输运现象。系统地综述了CNF的长径比、渗流骨架结构和分形特征以及渗流临界指数的非普适性对电学性能的影响。除了电学性能外,还简要综述了CNF复合材料的热导率和力学性能。此外,简要介绍了CNF的制备方法,包括催化化学气相沉积生长和静电纺丝,以及CNF复合材料的制备方法,包括熔融混合和溶液法。最后,在这篇综述文章中描述了它们作为传感器和电极材料的应用。