Aihara Jun-ichi
Department of Chemistry, Faculty of Science, Shizuoka University, Oya, Shizuoka 422-8529, Japan.
J Phys Chem A. 2008 Jun 12;112(23):5305-11. doi: 10.1021/jp8014996. Epub 2008 May 17.
Macrocyclic aromaticity is the most important concept in porphyrinoid chemistry. Bond resonance energy (BRE) for any pi-bond linking adjacent pyrrolic or other rings represents the stabilization energy due to macrocyclic aromaticity. We found that a main conjugation pathway associated with macrocyclic aromaticity can be traced by choosing a pi-bond with a larger BRE at every bifurcation of the pi-network. All pi-bonds located along the main conjugation pathway are intensified with large positive BREs compared with those located along the bypasses. On the other hand, a main destabilization pathway associated with macrocyclic antiaromaticity can be traced by choosing a pi-bond with a smaller BRE at every bifurcation of the pi-network. Macrocyclic conjugation pathways thus determined are fully consistent with the chemical shifts of protons attached to the macrocycle.
大环芳香性是卟啉类化学中最重要的概念。连接相邻吡咯环或其他环的任何π键的键共振能(BRE)代表了由于大环芳香性而产生的稳定能。我们发现,通过在π网络的每个分支处选择具有较大BRE的π键,可以追踪与大环芳香性相关的主要共轭途径。与沿着旁路的π键相比,沿着主要共轭途径的所有π键都具有较大的正BRE,从而得到强化。另一方面,通过在π网络的每个分支处选择具有较小BRE的π键,可以追踪与大环反芳香性相关的主要去稳定化途径。由此确定的大环共轭途径与连接在大环上的质子的化学位移完全一致。