True solutions of single-walled carbon nanotubes for assembly into macroscopic materials

Translating the unique characteristics of individual single-walled carbon nanotubes into macroscopic materials such as fibres and sheets has been hindered by ineffective assembly. Fluid-phase assembly is particularly attractive, but the ability to dissolve nanotubes in solvents has eluded researcher...

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Veröffentlicht in:Nature nanotechnology 2009-12, Vol.4 (12), p.830-834
Hauptverfasser: Pasquali, Matteo, Davis, Virginia A, Parra-Vasquez, A. Nicholas G, Green, Micah J, Rai, Pradeep K, Behabtu, Natnael, Prieto, Valentin, Booker, Richard D, Schmidt, Judith, Kesselman, Ellina, Zhou, Wei, Fan, Hua, Adams, W. Wade, Hauge, Robert H, Fischer, John E, Cohen, Yachin, Talmon, Yeshayahu, Smalley, Richard E
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Sprache:eng
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Zusammenfassung:Translating the unique characteristics of individual single-walled carbon nanotubes into macroscopic materials such as fibres and sheets has been hindered by ineffective assembly. Fluid-phase assembly is particularly attractive, but the ability to dissolve nanotubes in solvents has eluded researchers for over a decade. Here, we show that single-walled nanotubes form true thermodynamic solutions in superacids, and report the full phase diagram, allowing the rational design of fluid-phase assembly processes. Single-walled nanotubes dissolve spontaneously in chlorosulphonic acid at weight concentrations of up to 0.5wt%, 1,000 times higher than previously reported in other acids. At higher concentrations, they form liquid-crystal phases that can be readily processed into fibres and sheets of controlled morphology. These results lay the foundation for bottom-up assembly of nanotubes and nanorods into functional materials. The phase diagram of single-walled carbon nanotubes in superacids is reported, including true solutions, which are suitable for processing into aligned nanomaterials.
ISSN:1748-3387
1748-3395
DOI:10.1038/nnano.2009.302