Intramolecular proton transfer boosts water oxidation catalyzed by a Ru complex

Autor/a

Matheu, Roc

Ertem, Mehmed .Z.

Benet-Buchholz, Jordi

Coronado, Eugenio

Batista, Victor S.

Sala, Xavier

Llobet, Antoni

Fecha de publicación

2015



Resumen

<p> We introduce a new family of complexes with the general formula [Ru<em><sup>n</sup></em>(tda)(py)<sub>2</sub>]<em><sup>m</sup></em><sup>+</sup> (<em>n</em> = 2, <em>m</em> = 0, <strong>1</strong>; <em>n</em> = 3, <em>m</em> = 1, <strong>2</strong><sup>+</sup>; <em>n</em> = 4, <em>m</em> = 2, <strong>3</strong><sup>2+</sup>), with tda<sup>2&ndash;</sup> being [2,2&prime;:6&prime;,2&Prime;-terpyridine]-6,6&Prime;-dicarboxylate, including complex [Ru<sup>IV</sup>(OH)(tda-&kappa;-N<sup>3</sup>O)(py)<sub>2</sub>]<sup>+</sup>, <strong>4H</strong><sup>+</sup>, which we find to be an impressive water oxidation catalyst, formed by hydroxo coordination to <strong>3</strong><sup>2+</sup> under basic conditions. The complexes are synthesized, isolated, and thoroughly characterized by analytical, spectroscopic (UV&ndash;vis, nuclear magnetic resonance, electron paramagnetic resonance), computational, and electrochemical techniques (cyclic voltammetry, differential pulse voltammetry, coulometry), including solid-state monocrystal X-ray diffraction analysis. In oxidation state IV, the Ru center is seven-coordinated and diamagnetic, whereas in oxidation state II, the complex has an unbonded dangling carboxylate and is six-coordinated while still diamagnetic. With oxidation state III, the coordination number is halfway between the coordination of oxidation states II and IV. Species generated in situ have also been characterized by spectroscopic, computational, and electrochemical techniques, together with the related species derived from a different degree of protonation and oxidation states. <strong>4H</strong><sup>+</sup> can be generated potentiometrically, or voltammetrically, from <strong>3</strong><sup>2+</sup>, and both coexist in solution. While complex <strong>3</strong><sup>2+</sup> is not catalytically active, the catalytic performance of complex <strong>4H</strong><sup>+</sup> is characterized by the foot of the wave analysis, giving an impressive turnover frequency record of 8000 s<sup>&ndash;1</sup> at pH 7.0 and 50 000 s<sup>&ndash;1</sup> at pH 10.0. Density functional theory calculations provide a complete description of the water oxidation catalytic cycle of <strong>4H</strong><sup>+</sup>, manifesting the key functional role of the dangling carboxylate in lowering the activation free energies that lead to O&ndash;O bond formation.</p> <p> &nbsp;</p> <p> &nbsp;</p>

Tipo de documento

Artículo

Lengua

Inglés

Publicado por

American Chemical Society

Es versión de

Journal of The American Chemical Society

Número del acuerdo de la subvención

CTQ2013-49075-R

SEV2013-0319

CTQ2014-52974-REDC

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