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               <dc:title>Self-assembly and properties of a discrete water-soluble Prussian blue analogue FeII/CoIII cube: confinement of a water molecule in aqueous solution</dc:title>
               <dc:creator>Gonzálvez, Miguel A.</dc:creator>
               <dc:creator>Gallen Ortiz, Albert</dc:creator>
               <dc:creator>Ferrer García, Montserrat</dc:creator>
               <dc:creator>Martínez López, Manuel, 1957-</dc:creator>
               <dc:subject>Cobalt</dc:subject>
               <dc:subject>Compostos heterocíclics</dc:subject>
               <dc:subject>Lligands</dc:subject>
               <dc:subject>Cobalt</dc:subject>
               <dc:subject>Heterocyclic compounds</dc:subject>
               <dc:subject>Ligands</dc:subject>
               <dc:description>Novel types of water-soluble anionic cubic cages, K4[{CoIII(Me3-Tacn)}4{FeII(CN)6}4] and Na4[{CoIII(Me3-Tacn)}4{FeII(CN)6}4] (Me3-Tacn = 1,4,7-trimethyl-1,4,7-triazacyclononane), were prepared by means of a mechanistically designed self-assembly process between [Co(Me3-Tacn)Cl3] and A4[FeII(CN)6] (M = Na or K), consisting of a rate-limiting outer-sphere redox step, followed by a fast substitution/inner-sphere redox reaction sequence. These compounds show remarkable stability in aqueous solution at different pH ranges, displaying neat protonation processes and reversible oxidation with peroxodisulfate to its neutral {FeIII4CoIII4} form. Furthermore, the cages behave as a robust and water-soluble molecular Prussian Blue analogue capable of encapsulating {Na-OH2}+ pairs and K+ cations in aqueous solution, with the cubic structure of the complex being preserved. Substitution of the {Na-OH2}+ pairs by K+ is easily accomplished, and the electrochemical properties of the sodium and potassium salts of the new cages have been found to be dramatically dependent on the encapsulated units.</dc:description>
               <dc:date>2020-05-25T16:09:25Z</dc:date>
               <dc:date>2021-01-13T06:10:19Z</dc:date>
               <dc:date>2020-01-13</dc:date>
               <dc:date>2020-05-25T16:09:26Z</dc:date>
               <dc:type>info:eu-repo/semantics/article</dc:type>
               <dc:type>info:eu-repo/semantics/acceptedVersion</dc:type>
               <dc:relation>Versió postprint del document publicat a: https://doi.org/10.1021/acs.inorgchem.9b03274</dc:relation>
               <dc:relation>Inorganic Chemistry, 2020, vol. 59, num. 3, p. 1582-1587</dc:relation>
               <dc:relation>https://doi.org/10.1021/acs.inorgchem.9b03274</dc:relation>
               <dc:rights>(c) American Chemical Society , 2020</dc:rights>
               <dc:rights>info:eu-repo/semantics/openAccess</dc:rights>
               <dc:publisher>American Chemical Society</dc:publisher>
               <dc:source>Articles publicats en revistes (Química Inorgànica i Orgànica)</dc:source>
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