Raman spectroscopy as a tool to investigate the structure and electronic properties of carbon-atom wires

拉曼光谱 石墨烯 材料科学 碳纤维 Atom(片上系统) 电子结构 碳纳米管 原子单位 拉曼散射 纳米结构 光谱学 背景(考古学) 纳米技术 化学物理 计算化学 化学 物理 复合数 光学 嵌入式系统 古生物学 复合材料 生物 量子力学 计算机科学
作者
Alberto Milani,Matteo Tommasini,Valeria Russo,Andrea Li Bassi,Andrea Lucotti,Franco Cataldo,Carlo S. Casari
出处
期刊:Beilstein Journal of Nanotechnology [Beilstein Institute for the Advancement of Chemical Sciences]
卷期号:6: 480-491 被引量:112
标识
DOI:10.3762/bjnano.6.49
摘要

Graphene, nanotubes and other carbon nanostructures have shown potential as candidates for advanced technological applications due to the different coordination of carbon atoms and to the possibility of π-conjugation. In this context, atomic-scale wires comprised of sp-hybridized carbon atoms represent ideal 1D systems to potentially downscale devices to the atomic level. Carbon-atom wires (CAWs) can be arranged in two possible structures: a sequence of double bonds (cumulenes), resulting in a 1D metal, or an alternating sequence of single-triple bonds (polyynes), expected to show semiconducting properties. The electronic and optical properties of CAWs can be finely tuned by controlling the wire length (i.e., the number of carbon atoms) and the type of termination (e.g., atom, molecular group or nanostructure). Although linear, sp-hybridized carbon systems are still considered elusive and unstable materials, a number of nanostructures consisting of sp-carbon wires have been produced and characterized to date. In this short review, we present the main CAW synthesis techniques and stabilization strategies and we discuss the current status of the understanding of their structural, electronic and vibrational properties with particular attention to how these properties are related to one another. We focus on the use of vibrational spectroscopy to provide information on the structural and electronic properties of the system (e.g., determination of wire length). Moreover, by employing Raman spectroscopy and surface enhanced Raman scattering in combination with the support of first principles calculations, we show that a detailed understanding of the charge transfer between CAWs and metal nanoparticles may open the possibility to tune the electronic structure from alternating to equalized bonds.
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