Literature DB >> 29537264

Dramatic Alteration of 3ILCT Lifetimes Using Ancillary Ligands in [Re(L)(CO)3(phen-TPA)] n+ Complexes: An Integrated Spectroscopic and Theoretical Study.

Georgina E Shillito1, Thomas B J Hall1, Dan Preston1, Philipp Traber2, Lingjun Wu3, Katherine E A Reynolds3, Raphael Horvath3, Xue Z Sun3, Nigel T Lucas1, James D Crowley1, Michael W George3,4, Stephan Kupfer2, Keith C Gordon1.   

Abstract

The ground and excited state photophysical properties of a series of fac-[Re(L)(CO)3(α-diimine)] n+ complexes, where L = Br-, Cl-, 4-dimethylaminopyridine (dmap) and pyridine (py) have been extensively studied utilizing numerous electronic and vibrational spectroscopic techniques in conjunction with a suite of quantum chemical methods. The α-diimine ligand consists of 1,10-phenanthroline with the highly electron donating triphenylamine (TPA) appended in the 5 position. This gives rise to intraligand charge transfer (ILCT) states lying lower in energy than the conventional metal-to-ligand charge transfer (MLCT) state, the energies of which are red and blue-shifted, respectively, as the ancillary ligand, L becomes more electron withdrawing. The emitting state is 3ILCT in nature for all complexes studied, characterized through transient absorption and emission, transient resonance Raman (TR2), time-resolved infrared (TRIR) spectroscopy and TDDFT calculations. Systematic modulation of the ancillary ligand causes unanticipated variation in the 3ILCT lifetime by 2 orders of magnitude, ranging from 6.0 μs for L = Br- to 27 ns for L = py, without altering the nature of the excited state formed or the relative order of the other CT states present. Temperature dependent lifetime measurements and quantum chemical calculations provide no clear indication of close lying deactivating states, MO switching, contributions from a halide-to-ligand charge transfer (XLCT) state or dramatic changes in spin-orbit coupling. It appears that the influence of the ancillary ligand on the excited state lifetime could be explained in terms of energy gap law, in which there is a correlation between ln( knr) and Eem with a slope of -21.4 eV-1 for the 3ILCT emission.

Entities:  

Year:  2018        PMID: 29537264     DOI: 10.1021/jacs.7b12868

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  4 in total

1.  Optically Controlled Electron Transfer in a ReI Complex.

Authors:  Egmont J Rohwer; Yan Geng; Maryam Akbarimoosavi; Latévi M Lawson Daku; Olivier Aleveque; Eric Levillain; Jürg Hauser; Andrea Cannizzo; Robert Häner; Silvio Decurtins; Robert J Stanley; Thomas Feurer; Shi-Xia Liu
Journal:  Chemistry       Date:  2021-02-24       Impact factor: 5.020

2.  In-Depth Studies of Ground- and Excited-State Properties of Re(I) Carbonyl Complexes Bearing 2,2':6',2″-Terpyridine and 2,6-Bis(pyrazin-2-yl)pyridine Coupled with π-Conjugated Aryl Chromophores.

Authors:  Agata Szlapa-Kula; Magdalena Małecka; Anna M Maroń; Henryk Janeczek; Mariola Siwy; Ewa Schab-Balcerzak; Marcin Szalkowski; Sebastian Maćkowski; Tomasz Pedzinski; Karol Erfurt; Barbara Machura
Journal:  Inorg Chem       Date:  2021-11-30       Impact factor: 5.165

3.  Computational Design of Rhenium(I) Carbonyl Complexes for Anticancer Photodynamic Therapy.

Authors:  Daniel Álvarez; M Isabel Menéndez; Ramón López
Journal:  Inorg Chem       Date:  2021-12-16       Impact factor: 5.165

4.  Impact of the Anthryl Linking Mode on the Photophysics and Excited-State Dynamics of Re(I) Complexes [ReCl(CO)3(4'-An-terpy-κ2N)].

Authors:  Magdalena Małecka; Agata Szlapa-Kula; Anna M Maroń; Przemyslaw Ledwon; Mariola Siwy; Ewa Schab-Balcerzak; Karolina Sulowska; Sebastian Maćkowski; Karol Erfurt; Barbara Machura
Journal:  Inorg Chem       Date:  2022-09-13       Impact factor: 5.436

  4 in total

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