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芘及其非交替异构体的亲电与氧化化学:对芘、氮杂芘(二环戊并[ef,kl]庚搭烯)和二环庚并[ed,gh]戊搭烯的质子化碳正离子和氧化双阳离子的理论(DFT、GIAO-NMR、NICS)研究

Electrophilic and oxidative chemistry of pyrene and its non-alternant isomers: theoretical (DFT, GIAO-NMR, NICS) study of protonation carbocations and oxidation dications from pyrene, azupyrene (dicyclopenta[ef,kl]heptalene) and dicyclohepta[ed,gh]pentalene.

作者信息

Okazaki Takao, Laali Kenneth K

机构信息

Department of Chemistry, Kent State University, Kent, OH 44242, USA.

出版信息

Org Biomol Chem. 2004 Aug 7;2(15):2214-9. doi: 10.1039/B405009F. Epub 2004 Jul 14.

Abstract

Mono- and diprotonated carbocations and the two-electron oxidation dications derived from parent pyrene and its nonalternant isomers "azupyrene"(dicyclopenta[ef,kl]heptalene)(DCPH) and dicyclohepta[ed,gh]pentalene (DCHP) were studied by DFT at the B3LYP/6-31G(d) level. The most likely site(s) for mono- and diprotonation were determined based on relative arenium ion energies and the structures of the energetically most favored carbocations were determined by geometry optimization. The NMR chemical shifts for the protonated mono- and dications and the oxidation dications were computed by GIAO-NMR at the B3LYP/6-31G(d)//B3LYP/6-31G(d) level and their charge delocalization paths were deduced based on magnitude of the computed [capital Delta]small deltaC values and the NPA-derived changes in charges. Relative aromaticity/antiaromaticity in various rings in the energetically favored mono- and dications was estimated via NICS and [capital Delta]NICS. Calculated NMR chemical shift data for and were compared with the available experimental NMR values. The available data on chemical and physical properties of DCPH and DCHP are extremely limited and biological activity data are non-existent. The present study provides the first glance into their carbocations and oxidation dications, while augmenting and reinforcing the previous stable ion data on the pyrenium cations.

摘要

采用密度泛函理论(DFT)在B3LYP/6 - 31G(d)水平上研究了源自母体芘及其非交替异构体“氮杂芘”(二环戊[ef,kl]庚搭烯)(DCPH)和二环庚[ed,gh]戊搭烯(DCHP)的单质子化和双质子化碳正离子以及双电子氧化二价离子。基于相对芳鎓离子能量确定了单质子化和双质子化最可能的位点,并通过几何优化确定了能量上最有利的碳正离子的结构。在B3LYP/6 - 31G(d)//B3LYP/6 - 31G(d)水平上通过GIAO - NMR计算了质子化单离子和二价离子以及氧化二价离子的核磁共振化学位移,并根据计算出的Δδ(13)C值的大小和NPA衍生的电荷变化推断了它们的电荷离域路径。通过NICS和ΔNICS估计了能量上有利的单离子和二价离子中各个环的相对芳香性/反芳香性。将计算得到的和的核磁共振化学位移数据与现有的实验核磁共振值进行了比较。关于DCPH和DCHP的化学和物理性质的现有数据极其有限,且不存在生物活性数据。本研究首次对它们的碳正离子和氧化二价离子进行了研究,同时补充和强化了先前关于芘鎓阳离子的稳定离子数据。

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