摘要
We address the issue of the low electrical conductivity observed in carbon nanotube networks using first-principles calculations of the structure, stability, and ballistic transport of different nanotube junctions. We first study covalent linkers, using the nitrene-pyrazine case as a model for conductance-preserving [2 + 1] cycloadditions, and discuss the reasons for their poor performance. We then characterize the role of transition-metal adsorbates in improving mechanical coupling and electrical tunneling between the tubes. We show that the strong hybridization between the transition-metal d orbitals with the π orbitals of the nanotube can provide an excellent electrical bridge for nanotube-nanotube junctions. This effect is maximized in the case of nitrogen-doped nanotubes, thanks to the strong mechanical coupling between the tubes mediated by a single transition metal adatom. Our results suggest effective strategies to optimize the performance of carbon nanotube networks.
| 原文 | 英語 |
|---|---|
| 頁(從 - 到) | 9726-9736 |
| 頁數 | 11 |
| 期刊 | ACS Nano |
| 卷 | 5 |
| 發行號 | 12 |
| DOIs | |
| 出版狀態 | 已發佈 - 2011 12月 27 |
| 對外發佈 | 是 |
ASJC Scopus subject areas
- 一般材料科學
- 一般工程
- 一般物理與天文學
指紋
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