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Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
The impact of second coordination sphere functional group extension on product selectivity for manganese bipyridyl
Lisa Suntrup1, Vanna Blasczak1, Roonak Saeedi1
1Department of Chemistry, University of Massachusetts Boston, 100 Morrissey Boulevard, Boston, MA 02125, USA. jonathan.rochford@umb.edu.
Abstract:
Utilizing the well established manganese bipyridyl class of homogeneous electrocatalyst, four new ligands are studied to probe the influence of distal, outer coordination sphere, H-bonding and steric effects on product selectivity for proton-coupled electrocatalytic CO2 reduction. The presence of a simple acetate functional group in the second coordination sphere provides a high selectivy for CO2-to-CO conversion irrespective of proton source (H2O vs. PhOH) or applied potential. The o-(methoxybenzoate)phenyl second/outer coordination sphere at the bipyridyl 6,6'-positions imparts poor product selectivity. In contrast, upon conjugation of the acetate functional group with the N-Boc-alanine moiety, a CO : HCO2- product selectivity of ∼1 : 1 is observed at the high overpotential catalytic wave (for both H2O and PhOH acids). Computed enthalpy and free energy of activation parameters suggest that selective CO2 insertion at the manganese hydride transition state is favored, over protonation, consistent with negligible hydrogen production during controlled potential electrolysis studies.
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