Extended Tetrathiafulvalenes with Fluoreno[3,2‐b]fluorene and Diindeno[1,2‐b : 1′,2′‐i]anthracene Cores

Author:

Granhøj Jeppe1ORCID,Zalibera Michal2ORCID,Malček Michal2ORCID,Bliksted Roug Pedersen Viktor1ORCID,Erbs Hillers‐Bendtsen Andreas1ORCID,Mikkelsen Kurt V.1,Rapta Peter2ORCID,Brøndsted Nielsen Mogens1ORCID

Affiliation:

1. Department of Chemistry University of Copenhagen Universitetsparken 5 DK-2100 Copenhagen Ø Denmark

2. Institute of Physical Chemistry and Chemical Physics Slovak University of Technology in Bratislava Faculty of Chemical and Food Technology Radlinského 9 SK-81237 Bratislava Slovak Republic

Abstract

AbstractIn one‐dimensional polycyclic aromatic hydrocarbons (PAHs) containing five‐ and six‐membered rings fused together, one key question is whether the structures possess a quinoidal or aromatic diradical character. Here, we generate such PAHs by reversible oxidation of PAH‐extended tetrathiafulvalenes (TTFs). Extended TTFs were thus prepared and studied for their geometrical properties (crystallography), redox properties, and UV/Vis/NIR/EPR characteristics as a function of charge state. The EPR measurements of radical cations showed unique features for each PAH‐TTF. The dications, formally composed of fluoreno[3,2‐b]fluorene and diindeno[1,2‐b:1′,2′‐i]anthracene cores, were experimentally found to exhibit singlet ground states. For the latter, calculations reveal the closed shell, quinoid singlet state to be isoenergetic with the open shell singlet diradical. Each charge state exhibited unique optical properties with radical cations absorbing strongly in the NIR region with signatures from π‐dimers for the large core. The experimental results were paralleled and supported by detailed computations, including spin density distribution calculations, EPR simulations, and nucleus independent chemical shift (NICS) xy scans.

Funder

Novo Nordisk Fonden

Publisher

Wiley

Subject

General Chemistry,Catalysis,Organic Chemistry

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