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NMR Shifts for Polycyclic Aromatic Hydrocarbons From First-Principles

机译:第一性原理的多环芳烃的NMR位移

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We present first-principles, density-functional theory calculations of the NMR chemical shifts for polycyclic aromatic hydrocarbons, starting with benzene and increasing sizes up to the one- and two-dimensional infinite limits of graphene ribbons and sheets. Our calculations are performed using a combination of the recently developed theory of orbital magnetization in solids, and a novel approach to NMR calculations where chemical shifts are obtained from the derivative of the orbital magnetization with respect to a microscopic, localized magnetic dipole. Using these methods we study on equal footing the H-1 and C-13 shifts in benzene, pyrene, coronene, in naphthalene, anthracene, naphthacene, and pentacene, and finally in graphene, graphite, and an infinite graphene ribbon. Our results show very good agreement with experiments and allow us to characterize the trends for the chemical shifts as a function of system size.
机译:我们提出了多环芳烃的NMR化学位移的第一性原理,密度泛函理论计算,从苯开始,并逐渐增大尺寸,直至石墨烯带和片材的一维和二维无穷大。我们的计算是结合使用最新开发的固体中轨道磁化理论和一种新颖的NMR计算方法,其中从轨道磁化强度相对于微观局部磁偶极子的化学位移获得化学位移。使用这些方法,我们研究了苯,pyr,并苯,萘,蒽,并四苯和并五苯,最后是石墨烯,石墨和无限石墨烯带中的H-1和C-13转移。我们的结果与实验非常吻合,使我们能够表征化学位移随系统大小变化的趋势。

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