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新型芳香和反芳香体系。

Novel aromatic and antiaromatic systems.

作者信息

Breslow Ronald

机构信息

Department of Chemistry, Columbia University, New York, NY, 10027, USA.

出版信息

Chem Rec. 2014 Dec;14(6):1174-82. doi: 10.1002/tcr.201402070. Epub 2014 Oct 22.

Abstract

We contributed to the field of non-benzenoid aromatic compounds by creating the cyclopropenyl cation and various of its derivatives, including cyclopropenone; it was the first aromatic system with other than six pi electrons in a single ring, and the simplest aromatic system. The pioneering work of Tetsuo Nozoe in tropolone chemistry was celebrated with the founding of ISNA, the International Symposium on Non-Benzenoid Aromatic Compounds, where I described our work in the field. It fit the prediction that aromaticity would be found in systems with 4n + 2 pi electrons, where n is an integer. I was also concerned with the properties of monocyclic systems with 4n cyclically conjugated pi electrons. They were expected not to be aromatic, but the interesting question was whether they were actually antiaromatic, especially destabilized by the cyclic conjugation in such 4n species as the cyclopropenyl anion, cyclobutadiene, and cyclopentadienyl cation. The evidence supports antiaromaticity in these cases. We also examined compounds where 4n cyclic pi systems were fused with aromatic systems, and most interestingly systems in which two 4n pi systems were fused. In these cases the periphery of the molecules had 4n + 2 pi electrons, for aromaticity, but the components were antiaromatic. Recently we have studied electrical conductivities in aromatic molecules such as thiophene and saw that aromaticity added resistance to the systems, so non-aromatic compounds are better conductors and antiaromatic compounds are predicted to be the best of all.

摘要

我们通过合成环丙烯基阳离子及其各种衍生物,包括环丙烯酮,为非苯型芳香化合物领域做出了贡献;它是首个单环中具有非六个π电子的芳香体系,也是最简单的芳香体系。野副哲夫在卓酚酮化学方面的开创性工作通过成立国际非苯型芳香化合物研讨会(ISNA)得到了认可,在该研讨会上我介绍了我们在该领域的工作。这符合在具有4n + 2个π电子的体系中发现芳香性的预测,其中n为整数。我还关注具有4n个环状共轭π电子的单环体系的性质。预计它们不具有芳香性,但有趣的问题是它们实际上是否具有反芳香性,特别是在诸如环丙烯基阴离子、环丁二烯和环戊二烯基阳离子等4n物种中,是否会因环状共轭而特别不稳定。证据支持这些情况下的反芳香性。我们还研究了4n环状π体系与芳香体系稠合的化合物,最有趣的是两个4nπ体系稠合的体系。在这些情况下,分子的外围具有4n + 2个π电子以实现芳香性,但其组成部分具有反芳香性。最近我们研究了噻吩等芳香分子的电导率,发现芳香性增加了体系的电阻,所以非芳香化合物是更好的导体,预计反芳香化合物是所有化合物中导电性最好的。

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