Literature DB >> 20545332

Effect of ligands with extended π-system on the photophysical properties of Ru(II) complexes.

Yujie Sun1, Maya El Ojaimi, Richard Hammitt, Randolph P Thummel, Claudia Turro.   

Abstract

Density functional theory calculations were performed on a series of six ruthenium complexes possessing tridentate ligands: [Ru(tpy)(2)](2+) (1; tpy = [2,2';6',2'']-terpyridine), [Ru(tpy)(pydppx)](2+) (2; pydppx = 3-(pyrid-2'-yl)-11,12-dimethyldipyrido[3,2-a: 2',3'-c]phenazine), [Ru(pydppx)(2)](2+) (3), [Ru(tpy)(pydppn)](2+) (4; pydppn = 3-(pyrid-2'-yl)-4,5,9,16-tetraazadibenzo[a,c]naphthacene), [Ru(pydppn)(2)](2+) (5), and [Ru(tpy)(pydbn)](+) (6; pyHdbn = 3-pyrid-2'-yl-4,9,16-triazadibenzo[a,c]naphthacene). The calculations were compared to experimental data, including electrochemistry and electronic absorption spectra. The theoretical results reveal that the lowest-lying singlet and triplet states in 4 and 5 are pydppn-based ππ* in character, which are remarkably different from the lowest-lying metal-to-ligand charge transfer (MLCT) states in 1-3. The calculated lowest triplet states in 4 and 5 are consistent with the (3)ππ* states observed experimentally. However, although the extended π-system of pydbn(-) is similar to that of pydppn, the HOMO of 6 lies above those of 4 and 5, resulting in strikingly different spectroscopic properties. Calculations show that the lowest triplet excited state of 6 is a combination of (3)MLCT and (3)ππ*. This work demonstrates that the electronic structure of the tridentate ligand has a pronounced effect on the photophysical properties of ruthenium(II) complexes and that DFT and TD-DFT methods are a useful tool that can be used to predict photophysical and redox properties of transition metal complexes.

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Year:  2010        PMID: 20545332     DOI: 10.1021/jp102613n

Source DB:  PubMed          Journal:  J Phys Chem B        ISSN: 1520-5207            Impact factor:   2.991


  4 in total

1.  Strained, Photoejecting Ru(II) Complexes that are Cytotoxic Under Hypoxic Conditions.

Authors:  John Roque; Dmytro Havrylyuk; Patrick C Barrett; Tariq Sainuddin; Julia McCain; Katsuya Colón; William T Sparks; Evan Bradner; Susan Monro; David Heidary; Colin G Cameron; Edith C Glazer; Sherri A McFarland
Journal:  Photochem Photobiol       Date:  2019-12-06       Impact factor: 3.421

2.  Metalloimmunotherapy with Rhodium and Ruthenium Complexes: Targeting Tumor-Associated Macrophages.

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Journal:  Chemistry       Date:  2022-03-24       Impact factor: 5.020

3.  Photocytotoxicity and photoinduced phosphine ligand exchange in a Ru(ii) polypyridyl complex.

Authors:  Sean J Steinke; Sayak Gupta; Eric J Piechota; Curtis E Moore; Jeremy J Kodanko; Claudia Turro
Journal:  Chem Sci       Date:  2022-02-01       Impact factor: 9.825

4.  Trapping intermediate MLCT states in low-symmetry {Ru(bpy)} complexes.

Authors:  Alejandro Cadranel; Paola S Oviedo; German E Pieslinger; Shiori Yamazaki; Valeria D Kleiman; Luis M Baraldo; Dirk M Guldi
Journal:  Chem Sci       Date:  2017-08-29       Impact factor: 9.825

  4 in total

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