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单纳米管拉曼光谱学的科学与应用

Science and applications of single-nanotube Raman spectroscopy.

作者信息

Dresselhaus M S, Dresselhaus G, Jorio A, Souza Filho A G, Samsonidze Ge G, Saito R

机构信息

Department of Electrical Engineering and Computer Science, Department of Physics, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139-4307, USA.

出版信息

J Nanosci Nanotechnol. 2003 Feb-Apr;3(1-2):19-37. doi: 10.1166/jnn.2003.189.

Abstract

A review is presented of the resonance Raman spectra from individual isolated single-wall carbon nanotubes (SWNTs). A brief summary is given of how the measurements are made. Why the resonance Raman effect allows single-carbon nanotube spectra to be observed easily and under normal operating conditions is summarized. The important structural information that is provided by single-nanotube spectroscopy using one laser line is discussed, and what else can be learned from tunable laser experiments is reviewed. Particular attention is given to the determination of the nanotube diameter and of the energy of its van Hove singularities Eii. Applications of single-nanotube spectroscopy are emphasized, such as measurements of isolated SWNTs connected with circuit-based samples and of isolated SWNTs mounted on an atomic force microscope tip. A critical assessment of the opportunities and limitations of the resonance Raman method for structural (n, m) identification is presented. The trigonal warping effect, which is central to the (n, m) identification in resonance Raman spectroscopy, is discussed in simple terms, and the importance of this effect in nanotube science and applications is reviewed.

摘要

本文综述了单个孤立单壁碳纳米管(SWNTs)的共振拉曼光谱。简要总结了测量方法。概述了共振拉曼效应如何使单碳纳米管光谱在正常操作条件下易于观察。讨论了使用一条激光线的单纳米管光谱学所提供的重要结构信息,并回顾了可调谐激光实验还能了解到的其他信息。特别关注了纳米管直径及其范霍夫奇点Eii能量的测定。强调了单纳米管光谱学的应用,例如与基于电路的样品相连的孤立SWNTs的测量以及安装在原子力显微镜尖端的孤立SWNTs的测量。对共振拉曼方法用于结构(n,m)识别的机遇和局限性进行了批判性评估。以简单的术语讨论了三角翘曲效应,该效应是共振拉曼光谱中(n,m)识别的核心,并回顾了这种效应在纳米管科学和应用中的重要性。

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