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Syntheses, X-ray structures, photochemistry, redox properties, and DFT calculations of interconvertible fac- and mer-[Mn(SPS)(CO)3] isomers containing a flexible SPS-based pincer ligand

Authors :
Nicolas Mézailles
Louis Ricard
Maria José Calhorda
Pedro D. Vaz
Taasje Mahabiersing
František Hartl
Pascal Le Floch
Marjolaine Doux
Computational Chemistry (HIMS, FNWI)
Spectroscopy and Photonic Materials (HIMS, FNWI)
Laboratoire Hétéroéléments et Coordination (DCPH)
École polytechnique (X)-Institut de Chimie du CNRS (INC)-Centre National de la Recherche Scientifique (CNRS)
Instituto de Tecnologia Química e Biológica António Xavier (ITQB)
Universidade Nova de Lisboa = NOVA University Lisbon (NOVA)
Departamento de Quimica e Bioquimica
Faculdade de Ciencias da Universidade de Lisboa
Van't Hoff Institute for Molecular Sciences
Universiteit van Amsterdam (UvA)
Source :
Inorganic Chemistry, 44(25), 9213-9224. American Chemical Society, Inorganic Chemistry, Inorganic Chemistry, American Chemical Society, 2005, 44, pp.9213. ⟨10.1021/ic050774m⟩
Publication Year :
2005

Abstract

12 pages; The lithium salt of the anionic SPS pincer ligand composed of a central hypervalent 4-phosphinine ring bearing two ortho-positioned diphenylphosphine sulfide side arms reacts with [Mn(CO)5Br] to give fac-[Mn(SPS)(CO)3]. This isomer can be converted photochemically to mer-[Mn(SPS)(CO)3], with a very high quantum yield (0.80 ± 0.05). The thermal backreaction is slow (taking ca. 8 h at room temperature), in contrast to rapid electrode-catalyzed mer-to-fac isomerization triggered by electrochemical reduction of mer-[Mn(SPS)(CO)3]. Both geometric isomers of [Mn(SPS)(CO)3] have been characterized by X-ray crystallography. Both isomers show luminescence from a low-lying 3IL (SPS-based) excited state. The light emission of fac-[Mn(SPS)(CO)3] is largely quenched by the efficient photoisomerization occurring probably from a low-lying Mn-CO dissociative excited state. Density functional theory (DFT) and time-dependent DFT calculations describe the highest occupied molecular orbital (HOMO) and lowest unoccupied molecular orbital (LUMO) of fac- and mer-[Mn(CO)3(SPS)] as ligand-centered orbitals, largely localized on the phosphinine ring of the SPS pincer ligand. In line with the ligand nature of its frontier orbitals, fac-[Mn(SPS)(CO)3] is electrochemically reversibly oxidized and reduced to the corresponding radical cation and anion, respectively. The spectroscopic (electron paramagnetic resonance, IR, and UV-vis) characterization of the radical species provides other evidence for the localization of the redox steps on the SPS ligand. The smaller HOMO-LUMO energy difference in the case of mer-[Mn(CO)3(SPS)], reflected in the electronic absorption and emission spectra, corresponds with its lower oxidation potential compared to that of the fac isomer. The thermodynamic instability of mer-[Mn(CO)3(SPS)], confirmed by the DFT calculations, increases upon one-electron reduction and oxidation of the complex.

Details

ISSN :
00201669 and 1520510X
Volume :
44
Issue :
25
Database :
OpenAIRE
Journal :
Inorganic chemistry
Accession number :
edsair.doi.dedup.....09a90cf0f2647e8d24cb44c32180b0ff
Full Text :
https://doi.org/10.1021/ic050774m⟩