Yumura Takashi, Kertesz Miklos, Iijima Sumio
Department of Chemistry, Georgetown University, 37th and O Streets, NW, Washington, DC 20057, USA.
J Phys Chem B. 2007 Feb 8;111(5):1099-109. doi: 10.1021/jp066508r.
Defected fullerenes in nanopeapods form bonds with the encapsulating single-walled carbon nanotubes when irradiated by an electron beam leading to changes in the guest (fullerene) and the host (nanotube). Intrinsic reaction coordinate (IRC) analysis based on B3LYP hybrid density functional theory shows that a C1-C59 defect with a single protruding C atom is initially formed from the C60(Ih) cage. The high activation energy for this step (8.37 eV (193.0 kcal/mol)), being assumed to be accessible during irradiation, is lower than that of the Stone-Wales rearrangement on the sp2 network. The binding of the defected fullerene to the nanotube is preferential, orthogonal bonds relative to the tube axis being slightly preferred. Because of the covalent bonds formed between the guest and host, the carbon network on the nanotube is locally perturbed in the vicinity of the binding site. As a result of the new bonds, bisnorcaradiene-like as well as quinonoid-like patterns appear near the binding site. These results are interpreted using orbital interaction and Clar diagram arguments. The changes in the bonding pattern on the nanotube should be significant in further functionalization of carbon nanotubes.
纳米豆荚中的缺陷富勒烯在电子束照射下与包裹它的单壁碳纳米管形成键,导致客体(富勒烯)和主体(纳米管)发生变化。基于B3LYP杂化密度泛函理论的内禀反应坐标(IRC)分析表明,具有单个突出C原子的C1-C59缺陷最初由C60(Ih)笼形成。这一步骤的高活化能(8.37 eV(193.0 kcal/mol)),假定在辐照过程中可以达到,低于sp2网络上的斯通-威尔士重排的活化能。缺陷富勒烯与纳米管的结合是优先的,相对于管轴的正交键略占优势。由于客体和主体之间形成了共价键,纳米管上的碳网络在结合位点附近局部受到扰动。由于新键的形成,在结合位点附近出现了双降冰片二烯样以及醌样图案。使用轨道相互作用和克拉尔图论证对这些结果进行了解释。纳米管上键合模式的变化在碳纳米管的进一步功能化中应该是显著的。