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Redox-rich spin-spin-coupled semiquinoneruthenium dimers with intense near-IR absorption. | LitMetric

AI Article Synopsis

  • The study explores a novel ruthenium complex using the RuCl(μ-tppz)ClRu platform to connect two redox systems featuring o-quinone/catecholate ligands, resulting in stable complexes with distinct redox behavior.
  • The complexes show pronounced near-infrared absorption and unique spin interactions, revealing intricate electronic structures through various analytical methods.
  • Results indicate that the redox properties and interactions differ significantly between the substituted and unsubstituted quinones, highlighting the role of the tppz bridge in the reduction process.

Article Abstract

Using the [RuCl(μ-tppz)ClRu](2+) [tppz = 2,3,5,6-tetrakis(2-pyridyl)pyrazine] platform for bridging two o-quinone/catecholate two-step redox systems (unsubstituted, Q(n), or 3,5- di-tert-butyl-substituted, DTBQ(n)), we have obtained the stable complexes [(Q(•-))Ru(II)Cl(μ-tppz)ClRu(II)(Q(•-))] (1) and the structurally characterized [(DTBQ(•-))Ru(II)Cl(μ-tppz)ClRu(II)(DTBQ(•-))] (2). The compounds exhibit mostly quinone-ligand-based redox activity within a narrow potential range, high-intensity near-IR absorptions (λ(max) ≈ 920 nm; ε > 50,000 M(-1) cm(-1)), and variable intra- and intermolecular spin-spin interactions. Density functional theory calculations, electron paramagnetic resonance (EPR), and spectroelectrochemical results (UV-vis-near-IR region) for three one-electron-reduction and two one-electron-oxidation processes were used to probe the electronic structures of the systems in the various accessible valence states. EPR spectroscopy of the singly charged doublet species showed semiquinone-type response for 1(+), 2(+), and 2(-), while 1 exhibits more metal based spin, a consequence of the easier reduction of Q as compared to DTBQ. Comparison with the analogous redox series involving a more basic N-phenyliminoquinone ligand reveals significant differences related to the shifted redox potentials, different space requirements, and different interactions between the metals and the quinone-type ligands. As a result, the tppz bridge is reduced here only after full reduction of the terminal quinone ligands to their catecholate states.

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Source
http://dx.doi.org/10.1021/ic102280qDOI Listing

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