Campo J, Piao Y, Lam S, Stafford C M, Streit J K, Simpson J R, Hight Walker A R, Fagan J A
National Institute of Standards and Technology, Materials Science and Engineering Division, Gaithersburg, MD, USA 20899.
Nanoscale Horiz. 2016 Jul 20;1(4):317-324. doi: 10.1039/c6nh00062b. Epub 2016 May 18.
Chemical control of the endohedral volume of single-wall carbon nanotubes (SWCNTs) via liquid-phase filling is established to be a facile strategy to controllably modify properties of SWCNTs in manners significant for processing and proposed applications. Encapsulation of over 20 different compounds with distinct chemical structures, functionalities, and effects is demonstrated in SWCNTs of multiple diameter ranges, with the ability to fill the endohedral volume based on the availability of the core volume and compatibility of the molecule's size with the cross-section of the nanotube's cavity. Through exclusion of ingested water and selection of the endohedral chemical environment, significant improvements to the optical properties of dispersed SWCNTs such as narrowed optical transition linewidths and enhanced fluorescence intensities are observed. Examples of tailoring modified properties towards applications or improved processing by endohedral passivation are discussed.
通过液相填充对单壁碳纳米管(SWCNTs)的内包体积进行化学控制,已被确立为一种简便的策略,可通过对加工和预期应用具有重要意义的方式来可控地改变SWCNTs的性质。在多个直径范围的SWCNTs中展示了对20多种具有不同化学结构、功能和效应的化合物的封装,其能够根据核心体积的可用性以及分子大小与纳米管腔横截面的兼容性来填充内包体积。通过排除摄入的水并选择内包化学环境,观察到分散的SWCNTs的光学性质有显著改善,如光学跃迁线宽变窄和荧光强度增强。讨论了通过内包钝化针对应用定制改性性质或改进加工的实例。