6533b82efe1ef96bd12933b2
RESEARCH PRODUCT
Computational Screening of Doped Graphene Electrodes for Alkaline CO2 Reduction
Marko MelanderAnand Mohan VermaKaroliina Honkalasubject
Economics and Econometricsproton-coupled electron transferMaterials scienceStandard hydrogen electrodeEnergy Engineering and Power Technologylcsh:A02 engineering and technology010402 general chemistryElectrochemistryElectrocatalystelectrosorption01 natural sciencesRedoxlaw.inventionCatalysisElectron transferelektrokatalyysilawgrafeenielectrocatalysisdensity functional theoryRenewable Energy Sustainability and the EnvironmentGraphenegraphenetiheysfunktionaaliteoria021001 nanoscience & nanotechnology0104 chemical sciencesFuel TechnologyChemical engineeringElectrodelcsh:General Works0210 nano-technologydescription
The electrocatalytic CO<sub>2</sub> reduction reaction (CO<sub>2</sub>RR) is considered as one of the most promising approaches to synthesizing carbonaceous fuels and chemicals without utilizing fossil resources. However, current technologies are still in the early phase focusing primarily on identifying optimal electrode materials and reaction conditions. Doped graphene-based materials are among the best CO<sub>2</sub>RR electrocatalysts and in the present work we have performed a computational screening study to identify suitable graphene catalysts for CO<sub>2</sub>RR to CO under alkaline conditions. Several types of modified-graphene frameworks doped with metallic and non-metallic elements were considered. After establishing thermodynamically stable electrodes, the electrochemical CO<sub>2</sub>RR to CO is studied in the alkaline media. Both concerted proton-coupled electron transfer (PCET) and decoupled proton and electron transfer (ETPT) mechanisms were considered by developing and using a generalization of the computational hydrogen electrode approach. It is established that the CO<sub>2</sub> electrosorption and associated charge transfer along the ETPT pathway are of utmost importance and significantly impact the electrochemical thermodynamics of CO<sub>2</sub>RR. Our study suggests an exceptional performance of metal-doped nitrogen-coordinated graphene electrodes, especially 3N-coordinated graphene electrodes.
year | journal | country | edition | language |
---|---|---|---|---|
2020-09-17 |