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Selective Reduction of Carbon Dioxide in Water Using [M(bpy2+)(CO)3(I)]2+ (M = Mn, Re) Electrocatalysts with Pendent
Preshit C Abhyankar1, Dmitry E Polyansky1, Gerald F Manbeck1
1Chemistry Division, Brookhaven National Laboratory, Upton, New York11973-5000, United States.
Abstract:
Manganese(I) carbonyl complexes are promising electrocatalysts for CO2 reduction, yet their application in homogeneous aqueous media remains limited by poor solubility and selectivity. Here, we report water-soluble Mn(I) and Re(I) complexes fac-[M(bpy2+)(CO)3X]2+ (X = I or Cl), featuring bipyridine ligands functionalized with -Ph-CH2-(NMe3)+ cationic ammonium groups that integrate water solubility with secondary-sphere stabilization. In a bicarbonate buffer at pH 6.8, the Mn catalyst is completely selective for CO production at a low overpotential (η = 0.3 V), operating by a protonation-first mechanism with observed rates of ∼10 s-1. Pulse radiolysis reveals that the one-electron-reduced Mn species undergoes dimerization in the absence of CO2 but reacts competitively with CO2 through an initial pre-equilibrium followed by fast formation of a dinuclear CO2-bridged species (ΔGo = -12.4 kcal mol-1). At a higher 0.6 V overpotential, a faster reduction-first pathway (∼100 s-1) is available upon reduction of the metallocarboxylic acid intermediate, Mn-CO2H2+; however, this regime is functionally limited by the formation of a resistive, noncatalytic film on the electrode surface. Comparison to the analogous water-soluble Re catalyst (kobs = 440 s-1, η = 0.6 V) highlights the distinct mechanistic advantages of earth-abundant Mn in low-potential catalysis. These results demonstrate how cationic second-sphere design enables selective, homogeneous CO2 reduction in water while revealing competing radical and electrode-mediated processes that govern catalytic performance.
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