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Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Fullerene Promotes CO2 Reduction to Methanol by a Cobalt(II) Phthalocyanine Electrocatalyst
Emmanuel Adu Fosu1, Mawuli Deegbey1, Elena Jakubikova1
1Department of Chemistry, North Carolina State University, 2620 Yarbrough Drive, Raleigh, North Carolina 27695, United States.
None:
Heterogenization of molecular electrocatalysts offers an attractive way to improve the catalytic selectivity and efficiency of CO2 conversion to liquid fuels. Herein, we employ density functional theory to compare the mechanism of CO2RR by a cobalt(II) tetra(amino)phthalocyanine (Co(II)Pc(NH2)4) electrocatalyst with and without the presence of fullerene support. Our DFT calculations suggest that the CO2 reduction mechanism is initiated by a metal-based electron reduction followed by subsequent CO2 nucleophilic addition, electron transfer, proton transfer, water dissociation, and proton-coupled electron transfer steps that lead to CO and methanol formation. We show that graphitic interactions between the Co(II)Pc(NH2)4 electrocatalyst and C60 support selectively improve the CO2RR to methanol at mild potentials. The undesirable hydrogen evolution reaction (HER) was also investigated for both electrocatalysts and proceeds via the protonation of the cobalt metal center over the nitrogen atom in the inner ring. The competition between the HER and the CO2RR was improved in favor of CO and methanol formation using the Co(II)Pc(NH2)4@C60 electrocatalyst. Overall, our results suggest C60 as a promising graphitic support for molecular electrocatalysts integration for CO2 catalysis.
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