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◆ Inorganic Chemistry2026-05-22· Chemistry

Oxygen Reduction Catalysis by a Binuclear Cu(II) Complex: Impact of Carboxamido Coordination on Mechanism and Rate

Srijan Narayan Chowdhury, Saikat Das, Aniket Mukherjee, Subhalaxmi Das, Panjo Lepcha, Rajib Samanta, Satadal Paul, Achintesh N. Biswas

原始摘要(英文原文)· Original abstract
The oxygen reduction efficacy of a binuclear Cu(II) complex [Cu 2 (PaPy 3 H) 2 ](ClO 4 ) 4 ( 1 ) (H-PaPy 3 = N, N -bis(2-pyridylmethyl)amine- N -ethyl-2-pyridine-2-carboxamide) is reported. In this complex, the ligand featuring a carboxamido moiety coordinates two Cu(II) centers in a [3 + 2] ligand-sharing motif. Notably, the carboxamido moiety binds to Cu(II) via the oxygen donor atom, in contrast to the more typical nitrogen coordination observed with a structurally related N5-carboxamido ligand, H-dpaq (H-dpaq = 2-[bis(pyridine-2-ylmethyl)]amino- N -quinolin-8-yl-acetamidate). Chronoamperometry (CA) and computational analyses clearly indicated two consecutive one-electron-reduction events, Cu(II)/Cu(II) to Cu(II)/Cu(I) or Cu(I)/Cu(II), followed by the appearance of the Cu(I)/Cu(I) state. Despite a large Cu(II)···Cu(II) separation, a degenerate set of d -orbitals enables efficient electron sharing between the two Cu centers, facilitating reduction while preserving structural integrity. Complex 1 efficiently catalyzes 4e – /4H + reduction of O 2 to H 2 O using decamethylferrocene (Fc*) as the electron donor and perchloric acid (HClO 4 ) as the proton source in dimethylformamide (DMF) at 298 K. Compared to the mononuclear Cu(II) complex, [Cu II (dpaq)](ClO 4 ) ( 2 ), complex 1 exhibits significantly faster ORR kinetics. Mechanistic studies, supported by spectrokinetic analysis, reveal a key difference in the rate-determining step (RDS) of the dioxygen reduction by these complexes. For complex 2, the RDS involves a proton-coupled electron transfer (PCET) to the Cu(II)-superoxo intermediate, while for complex 1, the formation of the putative Cu(II)-superoxo species itself constitutes the RDS. This study highlights the crucial role of binuclearity, wherein one Cu binds O 2 while the second Cu supplies the electron required for Cu(II)-hydroperoxo formation, unveiling how the ligand design and nuclearity govern the ORR mechanism and efficiency.
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Oxygen Reduction Catalysis by a Binuclear Cu(II) Complex: Impact of Carboxamido Coordination on Mechanism and Rate — 科研速览 Science Skim