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Unusually Efficient Pyridine Photodissociation from Ru(II) Complexes with Sterically Bulky Bidentate Ancillary Ligands

Overview
Journal J Phys Chem A
Specialty Chemistry
Date 2014 Jul 17
PMID 25027458
Citations 43
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Abstract

The introduction of steric bulk to the bidentate ligand in [Ru(tpy)(bpy)(py)](2+) (1; tpy = 2,2':2',6″-terpyridine; bpy = 2,2'-bipyridine; py = pyridine) to provide [Ru(tpy)(Me2bpy)(py)](2+) (2; Me2bpy = 6,6'-dimethyl-2,2'-bipyridine) and [Ru(tpy)(biq)(py)](2+) (3; biq = 2,2'-biquinoline) facilitates photoinduced dissociation of pyridine with visible light. Upon irradiation of 2 and 3 in CH3CN (λirr = 500 nm), ligand exchange occurs to produce the corresponding [Ru(tpy)(NN)(NCCH3)](2+) (NN = Me2bpy, biq) complex with quantum yields, Φ500, of 0.16(1) and 0.033(1) for 2 and 3, respectively. These values represent an increase in efficiency of the reaction by 2-3 orders of magnitude as compared to that of 1, Φ500 < 0.0001, under similar experimental conditions. The photolysis of 2 and 3 in H2O with low energy light to produce [Ru(tpy)(NN)(OH2)](2+) (NN = Me2bpy, biq) also proceeds rapidly (λirr > 590 nm). Complexes 1-3 are stable in the dark in both CH3CN and H2O under similar experimental conditions. X-ray crystal structures and theoretical calculations highlight significant distortion of the planes of the bidentate ligands in 2 and 3 relative to that of 1. The crystallographic dihedral angles defined by the bidentate ligand, Me2bpy in 2 and biq in 3, and the tpy ligand were determined to be 67.87° and 61.89°, respectively, whereas only a small distortion from the octahedral geometry is observed between bpy and tpy in 1, 83.34°. The steric bulk afforded by Me2bpy and biq also result in major distortions of the pyridine ligand in 2 and 3, respectively, relative to 1, which are believed to weaken its σ-bonding and π-back-bonding to the metal and play a crucial role in the efficiency of the photoinduced ligand exchange. The ability of 2 and 3 to undergo ligand exchange with λirr > 590 nm makes them potential candidates to build photochemotherapeutic agents for the delivery of drugs with pyridine binding groups.

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References
1.
Szacilowski K, Macyk W, Drzewiecka-Matuszek A, Brindell M, Stochel G . Bioinorganic photochemistry: frontiers and mechanisms. Chem Rev. 2005; 105(6):2647-94. DOI: 10.1021/cr030707e. View

2.
Fantacci S, De Angelis F, Selloni A . Absorption spectrum and solvatochromism of the [Ru(4,4'-COOH-2,2'-bpy)2(NCS)2] molecular dye by time dependent density functional theory. J Am Chem Soc. 2003; 125(14):4381-7. DOI: 10.1021/ja0207910. View

3.
McCusker J . Femtosecond absorption spectroscopy of transition metal charge-transfer complexes. Acc Chem Res. 2003; 36(12):876-87. DOI: 10.1021/ar030111d. View

4.
Wachter E, Howerton B, Hall E, Parkin S, Glazer E . A new type of DNA "light-switch": a dual photochemical sensor and metalating agent for duplex and G-quadruplex DNA. Chem Commun (Camb). 2013; 50(3):311-3. DOI: 10.1039/c3cc47269h. View

5.
Gratzel M . Solar energy conversion by dye-sensitized photovoltaic cells. Inorg Chem. 2005; 44(20):6841-51. DOI: 10.1021/ic0508371. View