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NMR Computations for Carbon Nanotubes From First Principles: Present Status and Future Directions

机译:碳纳米管的NMR计算从第一原理:现状和未来方向

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NMR (nuclear magnetic resonance) is a versatile experimental tool to study the properties of molecules and solids. It has been proposed that reliable computational data of the C-13 NMR chemical shifts of different types of carbon nanotubes may be used to guide experimental characterization by NMR. Within the last few years this field has become quite active. After outlining the background for first-principles calculations, as well as early model calculations, we focus on recent first-principles theoretical studies performed toward this end. Studies on finite and infinite SWNT systems have indicated that C-13 NMR may be used to determine the diameter distribution of the tubes in a bulk sample. The Knight shift of metallic tubes has been examined. NICS (nucleus independent chemical shifts) have yielded information about the aromaticity of various systems, and the NMR chemical shifts of small molecules trapped in nanotubes have been calculated. Work on SWNTs functionalized with NR groups has suggested that C-13 NMR may be used to determine which nanotube carbons are derivatized, and perhaps even yield information about the diameter of the tubes. It has also been found that C-13 NMR may be useful to quantify the degree of fluorination. Studies on Stone-Wales defects have indicated that well-resolved NMR signals may arise from atoms in the defect site. Shielding tensor data is also discussed. The theoretical progress made in this field shows that a wealth of information is contained within the NMR chemical shifts of carbon nanotubes.
机译:NMR(核磁共振)是研究分子和固体性质的多功能实验工具。已经提出,可以使用不同类型的碳纳米管的C-13 NMR化学位移的可靠计算数据来指导NMR的实验表征。在最近几年中,该领域变得非常活跃。在概述了第一性原理计算以及早期模型计算的背景之后,我们将重点放在为此目的而进行的最新的第一性原理理论研究上。对有限和无限SWNT系统的研究表明,C-13 NMR可用于确定大体积样品中试管的直径分布。已经检查了金属管的奈特位移。 NICS(与核无关的化学位移)已提供了有关各种系统的芳香性的信息,并且已计算出捕获在纳米管中的小分子的NMR化学位移。关于用NR基团官能化的SWNT的研究表明,可以使用C-13 NMR来确定哪些纳米碳被衍生,甚至可以得出有关管径的信息。还已经发现,C-13NMR可用于量化氟化度。对Stone-Wales缺陷的研究表明,分辨良好的NMR信号可能来自缺陷部位的原子。还讨论了屏蔽张量数据。该领域的理论进展表明,碳纳米管的NMR化学位移中包含大量信息。

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