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Aromaticity determines the relative stability of kinked vs. straight topologies in polycyclic aromatic hydrocarbons

机译:芳香性决定了多环芳烃中扭结形与笔直形拓扑的相对稳定性

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It is well-known that kinked phenacenes are more stable than their isomeric linear acenes, the archetypal example being phenanthrene that is more stable than anthracene by about 4–8 kcal/mol. In previous studies, the origin of the higher stability of kinked polycyclic aromatic hydrocarbons (PAHs) was found to be better π-bonding interactions, i.e., larger aromaticity, in kinked as compared to linear PAHs. Some years ago, however, Dominikowska and Palusiak (Phys. Chem. Chem. Phys. 2011, 13, 11976) found that dicationic linear anthracene is more stable than the dicationic kinked phenanthrene. Therefore, these authors showed that, in some cases, the linear topology in PAHs can be preferred over the kinked one. Our results using energy decomposition analyses in combination with the turn-upside-down approach show that the origin of the higher stability of dicationic anthracene is the same as in the neutral species, i.e. better π-bonding interactions. A similar result is found for the kinked and straight tetramethylated-pyrano-chromenes. We conclude that the aromaticity is the driven force that determines the relative stability of kinked vs. straight topologies in PAHs.
机译:众所周知,扭折的苯并菲比其异构的线性并苯更稳定,原型例子是比蒽更稳定约4–8 kcal / mol的菲。在先前的研究中,与线性PAH相比,发现扭结的多环芳烃(PAH)的较高稳定性的起源是在扭结中更好的π-键相互作用,即更大的芳香性。然而,几年前,Dominikowska和Palusiak(Phys。Chem。Chem。Phys。2011,13,11976)发现,线性线型蒽比线型邻位菲更稳定。因此,这些作者表明,在某些情况下,PAH中的线性拓扑可能比扭结的线性拓扑更可取。我们使用能量分解分析与翻转-倒置方法相结合的结果表明,双胍基蒽的更高稳定性的起源与中性物种相同,即更好的π键相互作用。对于扭结的和直的四甲基化吡喃二苯甲基,发现了相似的结果。我们得出的结论是,芳香性是决定PAH中扭结形与直形拓扑的相对稳定性的驱动力。

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