Kavan Ladislav, Dunsch Lothar
J. Heyrovský Institute of Physical Chemistry, v.v.i. Academy of Sciences of the Czech Republic, Dolejskova 3, 182 23 Prague 8, Czech Republic.
Chemphyschem. 2007 May 14;8(7):974-98. doi: 10.1002/cphc.200700081.
This review is focused on charge-transfer reactions at carbon nanotubes and fullerenes. The spectroelectrochemistry of fullerenes deals with the spin states of fullerenes, the role of mono-anions and the reactivity of higher charged states in C60. The optical (Vis-NIR) spectroelectrochemistry of single-walled carbon nanotubes (SWNTs) follows changes in the allowed optical transitions among the Van Hove singularities. The Raman spectroelectrochemistry of SWNT benefits from strong resonance enhancement of the Raman scattering. Here, both semiconducting and metallic SWNTs are analyzed using the radial breathing mode (RBM) and G-modes as well as the second order (D, G') and intermediate frequency modes. Raman spectroelectrochemistry of SWNT allows the addressing of index-identified tubes and even single isolated nanotubes. Optical and Raman spectroelectrochemistry of fullerene peapods, C60@SWNT and C70@SWNT indicates effective shielding of the intratubular fullerene (peas). The most striking effect in the spectroelectrochemistry of peapods is the so-called "anodic Raman enhancement" of intratubular C60. Double-walled carbon nanotubes (DWNTs) give a specific spectroscopic response in Vis-NIR spectroelectrochemistry for the inner and the outer tube. They are better distinguishable by Raman spectroelectrochemistry which allows a precise tracing of the specific doping response of outer/inner tubes.
本综述聚焦于碳纳米管和富勒烯上的电荷转移反应。富勒烯的光谱电化学涉及富勒烯的自旋态、单阴离子的作用以及C60中高电荷态的反应活性。单壁碳纳米管(SWNTs)的光学(可见-近红外)光谱电化学跟踪范霍夫奇点之间允许的光学跃迁的变化。SWNT的拉曼光谱电化学受益于拉曼散射的强共振增强。在此,使用径向呼吸模式(RBM)、G模式以及二阶(D、G')和中频模式对半导体和金属SWNTs进行分析。SWNT的拉曼光谱电化学能够研究经指数识别的碳管甚至单个孤立的纳米管。富勒烯豆荚、C60@SWNT和C70@SWNT的光学和拉曼光谱电化学表明管内富勒烯(豌豆)得到了有效屏蔽。富勒烯豆荚光谱电化学中最显著的效应是管内C60的所谓“阳极拉曼增强”。双壁碳纳米管(DWNTs)在可见-近红外光谱电化学中对内外管给出特定的光谱响应。通过拉曼光谱电化学它们能更好地区分,这允许精确追踪外/内管的特定掺杂响应。