The formation of Cu(III) species are often invoked as the key intermediate in Cu-catalyzed organic transformation reactions. In this study, we synthesized Cu(II) () and Cu(III) () complexes supported by a bisamidate-bisalkoxide ligand consisting of an -phenylenediamine (o-PDA) scaffold and characterized them through an array of spectroscopic techniques, including UV-visible, electron paramagnetic resonance, X-ray crystallography, and H nuclear magnetic resonance (NMR) and X-ray absorption spectroscopy. The Cu-N/O bond distances in are ∼0.1 Å reduced compared to , implying a significant increase in 's overall effective nuclear charge. Further, a Cu(III) complex () of a bisamidate-bisalkoxide ligand containing a -cyclohexane-1,2-diamine moiety exhibits nearly identical Cu-N/O bond distances to that of , inferring that the redox-active o-PDA backbone is not oxidized upon one-electron oxidation of the Cu(II) complex (). In addition, a considerable difference in the 1s → 4p and 1s → 3d transition energy was observed in the X-ray absorption near-edge structure data of vs , which is typical for the metal-centered oxidation process. Electrochemical measurements of the Cu(II) complex () in acetonitrile exhibited two consecutive redox couples at -0.9 and 0.4 V vs the Fc/Fc reference electrode. One-electron oxidation reaction of further resulted in the formation of a ligand-oxidized Cu complex (), which was characterized in depth. Reactivity studies of species and were explored toward the activation of the C-H/O-H bonds. A bond dissociation free energy (BDFE) value of ∼69 kcal/mol was estimated for the O-H bond of the Cu(II) complex formed upon transfer of hydrogen atom to . The study represents a thorough spectroscopic characterization of high-valent Cu complexes and sheds light on the PCET reactivity studies of Cu(III) complexes.
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http://dx.doi.org/10.1021/acs.inorgchem.2c04168 | DOI Listing |
Inorg Chem
January 2025
Dept. of Chemistry and Biochemistry, Auburn University, Auburn, Alabama 36849, United States.
The oxidation of (CH)NOH (DMH, ,-dimethylhydroxylamine) is of interest because of the use of this reagent in actinide separations. Here, we report on the aqueous oxidation of DMH by [IrCl], a classic outer-sphere one-electron oxidant. The reaction is subject to adventitious catalysis by Fe and Cu, and this catalysis can be suppressed with 1 mM oxalate.
View Article and Find Full Text PDFChem Asian J
January 2025
Indian Institute of Technology Guwahati, Department of Chemistry, Department of Chemistry, 781039, Guwahati, INDIA.
Fulfilment of energy demand by utilizing renewable energy sources that do not contribute to the production of greenhouse gases is a step forward in mitigating global warming. However, with the energy sources being intermittent in nature, renewable energy needs to be stored effectively on a grid scale. In this context, the development of redox-flow batteries has emerged as a promising technology where charging and discharging processes are accomplished by the redox shuttling of the electrolytes, namely anolytes and catholytes.
View Article and Find Full Text PDFACS Omega
December 2024
State Key Laboratory of Research & Development of Characteristic Qin Medicine Resources (Cultivation), Co-Construction Collaborative Innovation Center for Chinese Medicine Resources Industrialization by Shaanxi & Education Ministry, Shaanxi University of Chinese Medicine, Xianyang 712083, China.
Due to the lower oxidation potential than natural nucleic acid bases, one-electron oxidation of DNA is usually funneled into the direction of intermediates for oxidized DNA damage like 8-oxo-7,8-dihydroadenine (8-oxoA) leading to a radical cation, which may undergo facile deprotonation. However, compared to the sophisticated studies devoted to natural bases, much less is known about the radical cation degradation behavior of an oxidized DNA base. Inspired by this, a comprehensive theoretical investigation is performed to illuminate the deprotonation of 8-oxoA radical cation (8-oxoA) in both free and encumbered context by calculating the p value and mapping the energy profiles.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
December 2024
State Key Laboratory of Photocatalysis on Energy and Environment, College of Chemistry, Fuzhou University, Fuzhou, Fujian, 350108, P. R. China.
Heterogeneous photoelectrocatalysis systems have recently seen significant growth in organic transformations, but are limited by the inherent physicochemical properties of electrode materials. To enhance selectivity in these processes, we propose an innovative advancement in the rational design of photoanodes. Specifically, we incorporated cobalt porphyrin co-catalysts with confined Co sites onto bismuth vanadate films as a photoanode.
View Article and Find Full Text PDFSmall Methods
December 2024
Frumkin Institute of Physical Chemistry and Electrochemistry Russian Academy of Sciences, Leninsky pr., 31, building 4, Moscow, 119071, Russia.
A novel phthalocyanine-based hybrid nanofilm is for the first time successfully applied as an oxidative platform for surface enhanced Raman spectroscopy (SERS) sensing to fine-resolve Raman-inactive compounds. The hybrid is formed by self-assembly of zinc(II) 2,3,9,10,16,17,23,24-Octa[(3',5'-dicarboxy)-phenoxy]phthalocyaninate (ZnPc*) with the solid-supported monolayer of graphene oxide (GO) mediated by zinc acetate metal cluster. Atomic force microscopy, UV-vis and fluorescence spectroscopies confirm that this simple coordination motive in combination with molecular structure of ZnPc* prevents contact quenching of the light-excited triplet state through aromatic stacking with GO particles.
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