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Indirect to Direct Charge Transfer Transition in Plasmon‐Enabled CO 2 Photoreduction
- Source :
- Advanced Science, Vol 9, Iss 2, Pp n/a-n/a (2022)
- Publication Year :
- 2021
- Publisher :
- Wiley, 2021.
-
Abstract
- Understanding hot carrier dynamics between plasmonic nanomaterials and its adsorbate is of great importance for plasmon‐enhanced photoelectronic processes such as photocatalysis, optical sensing and spectroscopic analysis. However, it is often challenging to identify specific dominant mechanisms for a given process because of the complex pathways and ultrafast interactive dynamics of the photoelectrons. Here, using CO2 reduction as an example, the underlying mechanisms of plasmon‐driven catalysis at the single‐molecule level using time‐dependent density functional theory calculations is clearly probed. The CO2 molecule adsorbed on two typical nanoclusters, Ag20 and Ag147, is photoreduced by optically excited plasmon, accompanied by the excitation of asymmetric stretching and bending modes of CO2. A nonlinear relationship has been identified between laser intensity and reaction rate, demonstrating a synergic interplay and transition from indirect hot‐electron transfer to direct charge transfer, enacted by strong localized surface plasmons. These findings offer new insights for CO2 photoreduction and for the design of effective pathways toward highly efficient plasmon‐mediated photocatalysis.
- Subjects :
- indirect hot electron transfer
Materials science
Science
General Chemical Engineering
General Engineering
Physics::Optics
General Physics and Astronomy
Medicine (miscellaneous)
time‐dependent density functional theory
Time-dependent density functional theory
Biochemistry, Genetics and Molecular Biology (miscellaneous)
Nanoclusters
Chemical physics
CO2 photoreduction
Excited state
Physics::Atomic and Molecular Clusters
Photocatalysis
direct charge transfer
General Materials Science
Density functional theory
plasmon‐enabled photocatalysis
Plasmon
Excitation
Localized surface plasmon
Subjects
Details
- ISSN :
- 21983844
- Volume :
- 9
- Database :
- OpenAIRE
- Journal :
- Advanced Science
- Accession number :
- edsair.doi.dedup.....e3ccb8d3fa8ef406587f7f9ab15c11cf