Classic formulations of aromaticity have long been associated with topologically planar conjugated macrocyclic systems. The theoretical possibility of so-called bicycloaromaticity was noted early on. However, it has yet to be demonstrated by experiment in a simple synthetic organic molecule. Conjugated organic systems are attractive for studying the effect of structure on electronic features. This is because, in principle, they can be modified readily through dedicated synthesis. As such, they can provide useful frameworks for testing by experiment with fundamental insights provided by theory. Here we detail the synthesis and characterization of two purely organic non-planar dithienothiophene-bridged [34]octaphyrins that permit access to two different aromatic forms as a function of the oxidation state. In their neutral forms, these congeneric systems contain competing 26 and 34 π-electronic circuits. When subject to two-electron oxidation, electronically mixed [4n+1]/[4n+1] triplet biradical species in the ground state are obtained that display global aromaticity in accord with Baird's rule.

Download full-text PDF

Source
http://dx.doi.org/10.1038/nchem.2834DOI Listing

Publication Analysis

Top Keywords

bicyclic baird-type
4
baird-type aromaticity
4
aromaticity classic
4
classic formulations
4
formulations aromaticity
4
aromaticity long
4
long associated
4
associated topologically
4
topologically planar
4
planar conjugated
4

Similar Publications

Bicyclic Baird-type aromaticity.

Nat Chem

December 2017

Department of Chemistry, Yonsei University, Shinchon-dong 134, Seodaemoongu, Seoul 120-749, Korea.

Classic formulations of aromaticity have long been associated with topologically planar conjugated macrocyclic systems. The theoretical possibility of so-called bicycloaromaticity was noted early on. However, it has yet to be demonstrated by experiment in a simple synthetic organic molecule.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!