Long-lived charge-separated states in ligand-stabilized silver clusters
Matthew Pelton1, Yun Tang, Osman M Bakr
1Center for Nanoscale Materials, Argonne National Laboratory, Argonne, Illinois 60439, USA. pelton@anl.gov
Journal of the American Chemical Society
|July 11, 2012
Summary
Ligand-stabilized silver clusters show rapid and slow optical property decays after laser excitation. These decays, influenced by solvent polarity, suggest potential for solar energy harvesting applications.
Area of Science:
- Nanomaterials Science
- Photochemistry
- Physical Chemistry
Background:
- Atomically monodisperse silver clusters stabilized by aromatic thiol ligands have been synthesized.
- These clusters display intense absorption across visible and near-infrared spectra.
Purpose of the Study:
- To investigate the time-dependent optical properties of these silver clusters after laser excitation.
- To understand the kinetic processes governing their optical behavior and assess their potential for solar energy applications.
Main Methods:
- Ultrafast laser excitation of silver clusters across their absorption peaks.
- Time-resolved optical spectroscopy to monitor decay kinetics.
- Solvent polarity variation to study kinetic process dependencies.
Main Results:
- Two distinct kinetic decay processes were observed: a rapid decay (<1 ps) and a slow decay (>300 ns).
- Both decay time constants decreased with increasing solvent polarity.
- These processes are attributed to the formation and recombination of a charge-separated state.
Conclusions:
- The ligand-stabilized silver clusters exhibit a long-lived charge-separated state.
- Their broad optical absorption and long state lifetime make them promising for solar energy harvesting.
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