1 research outputs found
Elucidation of the Electrocatalytic Nitrite Reduction Mechanism by Bio-Inspired Copper Complexes
Mononuclear copper
complexes relevant to the active site of copper
nitrite reductases (CuNiRs) are known to be catalytically active for
the reduction of nitrite. Yet, their catalytic mechanism has thus
far not been resolved. Here, we provide a complete description of
the electrocatalytic nitrite reduction mechanism of a bio-inspired
CuNiR catalyst Cu(tmpa) (tmpa = tris(2-pyridylmethyl)amine) in aqueous
solution. Through a combination of electrochemical studies, reaction
kinetics, and density functional theory (DFT) computations, we show
that the protonation steps take place in a stepwise manner and are
decoupled from electron transfer. The rate-determining step is a general
acid-catalyzed protonation of a copper-ligated nitrous acid (HNO2) species. In view of the growing urge to convert nitrogen-containing
compounds, this work provides principal reaction parameters for efficient
electrochemical nitrite reduction. This contributes to the investigation
and development of nitrite reduction catalysts, which is crucial to
restore the biogeochemical nitrogen cycle