School of Physics and Technology, and MOE Key Laboratory of Artificial Micro- and Nano-structures, Wuhan University, Wuhan 430072, China.
Nanoscale. 2016 Jul 14;8(26):13017-24. doi: 10.1039/c6nr03928f. Epub 2016 Jun 17.
The separation of metallic (m-) and semiconducting (s-) single-walled carbon nanotubes (SWNTs) without causing contamination and damage is a major challenge for SWNT-based devices. As a facile and nondestructive tool, the use of a magnetic field could be an ideal strategy to separate m-/s-SWNTs, based on the difference of magnetic susceptibilities. Here, we designed a novel magnetic field-assisted floating catalyst chemical vapor deposition system to separate m-/s-SWNTs. Briefly, m-SWNTs are attracted toward the magnetic pole, leaving s-SWNTs on the substrate. By using this strategy, s-SWNTs with a purity of 99% could be obtained, which is enough to construct high-performance transistors with a mobility of 230 cm(2) V(-1) s(-1) and an on/off ratio of 10(6). We also established a model to quantitatively calculate the percentage of m-SWNTs on the substrate and this model shows a good match with the experimental data. Furthermore, our rational design also provides a new avenue for the growth of SWNTs with specific chirality and manipulated arrangement due to the difference of magnetic susceptibilities between different diameters, chiralities, and types.
将金属(m-)和半导体(s-)单壁碳纳米管(SWNTs)分离而不造成污染和损伤是基于 SWNT 的器件面临的主要挑战。磁场作为一种简单且无损的工具,基于磁化率的差异,可能是分离 m-/s-SWNTs 的理想策略。在这里,我们设计了一种新颖的磁场辅助浮动催化剂化学气相沉积系统来分离 m-/s-SWNTs。简而言之,m-SWNTs 被吸引到磁极上,而 s-SWNTs 留在基底上。通过这种策略,可以获得纯度为 99%的 s-SWNTs,足以构建具有迁移率为 230 cm(2) V(-1) s(-1)和开关比为 10(6)的高性能晶体管。我们还建立了一个模型来定量计算基底上 m-SWNTs 的百分比,该模型与实验数据吻合较好。此外,由于不同直径、手性和类型之间的磁化率差异,我们的合理设计也为具有特定手性和可控制排列的 SWNTs 的生长提供了新途径。