Symmetry‐Broken Charge‐Transfer Excited State in Homoleptic Zinc(II) Imidazo[1,2‐a]pyridine Complexes

Author:

Giuso Valerio1,Jouaiti Elise1,Cebrián Cristina2,Parant‐Aury Sabrina3,Kyritsakas Nathalie4,Gourlaouen Christophe5,Mauro Matteo1ORCID

Affiliation:

1. Institut de Physique et Chimie des Matériaux de Strasbourg, UMR7504 Université de Strasbourg, CNRS 23 rue du Loess 67034 Strasbourg France

2. Laboratoire Lorraine de Chimie Moléculaire (L2CM) Institut de Chimie, Physique et Matériaux (ICPM) Université de Lorraine, CNRS 1 Boulevard François Arago 57078 Metz France

3. Laboratoire Lorraine de Chimie Moléculaire (L2CM) Université de Lorraine, CNRS Blvd. des Aiguillettes 54506 Nancy France

4. Service de Radiocristallographie Fédération de chimie Le Bel – FR2010 BP 296R8 1, rue Blaise Pascal 67008 Strasbourg France

5. Laboratoire de Chimie Quantique Institut de Chimie de Strasbourg UMR7177 Université de Strasbourg-CNRS 4 Rue Blaise Pascal 67008 Strasbourg France

Abstract

AbstractA series of four homoleptic cationic ZnII complexes (Zn1Zn4) coordinated by two substituted bis‐imidazo[1,2‐a]pyridine (ImPy) ligands (L1L4) is herein presented. The ligands are functionalized with either electron acceptor or donor functional groups at the C6 positions of the two ImPy moieties. In DMF solution, all of the complexes display intense near‐UV to blue emission (λem=379–450 nm) with high photoluminescence quantum yields (PLQY) up to 0.50 and short‐lived excited states. Additionally, complex Zn4, containing the ‐NPh2 functionalized ligand, displays an interesting solvatochromic behavior. The absorption spectrum is characterized by electronic transitions with mainly ligand‐centered (1LC) and intraligand charge‐transfer (1ILCT) character, which involves a symmetric electron density redistribution at Franck‐Condon (FC). In stark contrast, the subsequent excited‐state dynamics relaxes the molecular symmetry and allows symmetry‐breaking hole‐electron pair redistribution on the bichromophoric system. As a consequence, an efficient radiative de‐excitation process takes place that is ascribed to a singlet‐manifold excited state with symmetry‐broken charge transfer (1SBCT) character, as supported by an in‐depth photophysical, electrochemical and time‐dependent density functional theory (TD‐DFT) investigation. Remarkably, the 1SBCT nature provides structureless green photoluminescence in the solid state (λem up to 520 nm for Zn4), which is rather uncommon for ZnII complexes.

Publisher

Wiley

Subject

Organic Chemistry,Physical and Theoretical Chemistry,Analytical Chemistry

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