| Literature DB >> 28335306 |
Jun-Jun Shang1, Qing-Sheng Yang2, Xiao-Hui Yan3, Xiao-Qiao He4, Kim-Meow Liew5.
Abstract
A nanorope is comprised of several carbon nanotubes (CNTs) with different chiralities. A molecular dynamic model is built to investigate the ionic adsorption and desorption of the CNT nanoropes. The charge distribution on the nanorope is obtained by using a modified gradient method based on classical electrostatic theory. The electrostatic interactions among charged carbon atoms are calculated by using the Coulomb law. It was found here that the charged nanorope can adsorb heavy metal ions, and the adsorption and desorption can be realized by controlling the strength of applied electric field. The distance between the ions and the nanorope as well as the amount of ions have an effect on the adsorption capacity of the nanorope. The desorption process takes less time than that of adsorption. The study indicates that the CNT nanorope can be used as a core element of devices for sewage treatment.Entities:
Keywords: adsorption and desorption of ions; carbon nanotubes; nanorope
Year: 2016 PMID: 28335306 PMCID: PMC5245197 DOI: 10.3390/nano6100177
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1Nanoropes including carbon nanotubes (CNTs) with chiralities (3, 3) (left), (6, 6) (middle), and (9, 9) (right).
The conditions of adsorption of metal and negative ions.
| Conditions | A+ | B− | C-atom | Ensemble | Time |
|---|---|---|---|---|---|
| 1 | 28 | 0 | 6888 | NVT | 200 ps |
| 2 | 0 | 28 | 6888 | NVT | 200 ps |
Figure 2Adsorption of metal ions.
Figure 3Adsorption of negative ions.
Figure 4Relation between distance and adsorption.
Figure 5Variation of adsorption rate with distance.
Figure 6Ionic adsorption capacity of a nanorope.
Figure 7Desorption of negative ions.