Duesberg G S, Loa I, Burghard M, Syassen K, Roth S
Max-Planck-Institut für Festkörperforschung, Heisenbergstrasse 1, D-70569 Stuttgart, Germany.
Phys Rev Lett. 2000 Dec 18;85(25):5436-9. doi: 10.1103/PhysRevLett.85.5436.
Polarized micro-Raman spectroscopy has been performed on spatially separated single-wall carbon nanotubes (SWNTs) in the form of individual nanotubes or thin ropes of only a few SWNTs. Different from bulk samples, the Raman spectra are composed of well-resolved peaks which allow a direct comparison of experimental data with theoretical calculations. Orientation-dependent measurements reveal maximum intensity of all Raman modes when the nanotubes are aligned parallel to the polarization of the incident laser light. The angular dependences clearly deviate from the selection rules predicted by theoretical studies. These differences are attributed to depolarization effects caused by the strongly anisotropic geometry of the nanotubes and to electronic resonance effects for excitation at 633 nm.
已对呈单个纳米管或仅由少数单壁碳纳米管构成的细绳形式的空间分离单壁碳纳米管(SWNTs)进行了偏振显微拉曼光谱分析。与块状样品不同,拉曼光谱由分辨率良好的峰组成,这使得能够将实验数据与理论计算进行直接比较。取向相关测量表明,当纳米管与入射激光的偏振方向平行排列时,所有拉曼模式的强度最大。角度依赖性明显偏离理论研究预测的选择规则。这些差异归因于纳米管强烈各向异性几何形状引起的去极化效应以及633nm激发时的电子共振效应。