Publication | Open Access
Surface‐Plasmon‐Assisted Photoelectrochemical Reduction of CO<sub>2</sub> and NO<sub>3</sub><sup>−</sup> on Nanostructured Silver Electrodes
64
Citations
43
References
2018
Year
Materials SciencePlasmonicsChemical EngineeringCarbon DioxideEngineeringPlasmonic CatalysisCo 2PhotocatalysisPhotoelectrochemical ReductionPhoto-electrochemical CellPlasmon-enhanced PhotovoltaicsChemistryPhotoelectrocatalysisPhoton EnergyPhotoelectrochemistryNanostructured Silver ElectrodesElectrochemistryPlasmonic Material
Abstract Electrochemical reduction of carbon dioxide (CO 2 ) typically suffers from low selectivity and poor reaction rates that necessitate high overpotentials, which impede its possible application for CO 2 capture, sequestration, or carbon‐based fuel production. New strategies to address these issues include the utilization of photoexcited charge carriers to overcome activation barriers for reactions that produce desirable products. This study demonstrates surface‐plasmon‐enhanced photoelectrochemical reduction of CO 2 and nitrate (NO 3 − ) on silver nanostructured electrodes. The observed photocurrent likely originates from a resonant charge transfer between the photogenerated plasmonic hot electrons and the lowest unoccupied molecular orbital (MO) acceptor energy levels of adsorbed CO 2 , NO 3 − , or their reductive intermediates. The observed differences in the resonant effects at the Ag electrode with respect to electrode potential and photon energy for CO 2 versus NO 3 − reduction suggest that plasmonic hot‐carriers interact selectively with specific MO acceptor energy levels of adsorbed surface species such as CO 2 , NO 3 − , or their reductive intermediates. This unique plasmon‐assisted charge generation and transfer mechanism can be used to increase yield, efficiency, and selectivity of various photoelectrochemical processes.
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