Centre for Nanoscale Science and Technology, School of Chemical and Physical Sciences, Flinders University, Adelaide, 5042, Australia.
Institute of Nanotechnology, Karlsruhe Institute of Technology, 76021, Karlsruhe, Germany.
Adv Mater. 2015 May 27;27(20):3105-37. doi: 10.1002/adma.201405686. Epub 2015 Apr 20.
Single-walled carbon nanotubes (SWCNTs) have been the focus of intense research, and the body of literature continues to grow exponentially, despite more than two decades having passed since the first reports. As well as extensive studies of the fundamental properties, this has seen SWCNTs used in a plethora of applications as far ranging as microelectronics, energy storage, solar cells, and sensors, to cancer treatment, drug delivery, and neuronal interfaces. On the other hand, the properties and applications of double-walled carbon nanotubes (DWCNTs) have remained relatively under-explored. This is despite DWCNTs not only sharing many of the same unique characteristics of their single-walled counterparts, but also possessing an additional suite of potentially advantageous properties arising due to the presence of the second wall and the often complex inter-wall interactions that arise. For example, it is envisaged that the outer wall can be selectively functionalized whilst still leaving the inner wall in its pristine state and available for signal transduction. A similar situation arises in DWCNT field effect transistors (FETs), where the outer wall can provide a convenient degree of chemical shielding of the inner wall from the external environment, allowing the excellent transconductance properties of the pristine nanotubes to be more fully exploited. Additionally, DWCNTs should also offer unique opportunities to further the fundamental understanding of the inter-wall interactions within and between carbon nanotubes. However, the realization of these goals has so far been limited by the same challenge experienced by the SWCNT field until recent years, namely, the inherent heterogeneity of raw, as-produced DWCNT material. As such, there is now an emerging field of research regarding DWCNT processing that focuses on the preparation of material of defined length, diameter and electronic type, and which is rapidly building upon the experience gained by the broader SWCNT community. This review describes the background of the field, summarizing some relevant theory and the available synthesis and purification routes; then provides a thorough synopsis of the current state-of-the-art in DWCNT sorting methodologies, outlines contemporary challenges in the field, and discusses the outlook for various potential applications of the resulting material.
单壁碳纳米管 (SWCNT) 一直是研究的焦点,尽管自第一份报告发布以来已经过去了二十多年,但文献数量仍在呈指数级增长。除了对基本特性进行广泛研究外,SWCNT 还被广泛应用于从微电子学、储能、太阳能电池和传感器到癌症治疗、药物输送和神经元接口等多个领域。另一方面,双壁碳纳米管 (DWCNT) 的特性和应用仍然相对未得到充分探索。尽管 DWCNT 不仅具有与其单壁对应物相同的许多独特特性,而且由于第二壁的存在以及由此产生的复杂的层间相互作用,还具有潜在的有利特性。例如,可以设想选择性地官能化外壁,同时保持内壁处于原始状态并可用于信号转导。在 DWCNT 场效应晶体管 (FET) 中也会出现类似的情况,其中外壁可以为内壁提供从外部环境的方便程度的化学屏蔽,从而可以更充分地利用原始纳米管的优异跨导特性。此外,DWCNT 还应该为进一步深入了解碳纳米管内和之间的层间相互作用提供独特的机会。然而,到目前为止,这些目标的实现一直受到与 SWCNT 领域相同的挑战的限制,即原始 DWCNT 材料的固有异质性。因此,现在有一个新兴的 DWCNT 处理研究领域,专注于制备具有定义长度、直径和电子类型的材料,并且该领域正在迅速利用更广泛的 SWCNT 社区所获得的经验。本文综述了该领域的背景,总结了一些相关理论和现有的合成和纯化途径;然后全面概述了 DWCNT 分类方法的现状,概述了该领域当前的挑战,并讨论了所得材料的各种潜在应用的前景。