Publication | Open Access
Bimolecular Photoinduced Electron Transfer Beyond the Diffusion Limit: The Rehm–Weller Experiment Revisited with Femtosecond Time Resolution
108
Citations
63
References
2014
Year
Charge ExcitationsEngineeringExcitation Energy TransferChemistryElectronic Excited StateCharge TransportMarcus TheoryPhotophysical PropertyPhotochemistryPhysicsMechanistic PhotochemistryAtomic PhysicsPhysical ChemistryPhotoelectric MeasurementQuantum ChemistryWeaker MarcusExcited State PropertyNatural SciencesApplied PhysicsFemtosecond Time ResolutionDiffusion Rate ConstantDiffusion LimitRehm–weller Experiment Revisited
To access the intrinsic, diffusion free, rate constant of bimolecular photoinduced electron transfer reactions, fluorescence quenching experiments have been performed with 14 donor/acceptor pairs, covering a driving-force range going from 0.6 to 2.4 eV, using steady-state and femtosecond time-resolved emission, and applying a diffusion-reaction model that accounts for the static and transient stages of the quenching for the analysis. The intrinsic electron transfer rate constants are up to 2 orders of magnitude larger than the diffusion rate constant in acetonitrile. Above ∼1.5 eV, a slight decrease of the rate constant is observed, pointing to a much weaker Marcus inverted region than those reported for other types of electron transfer reactions, such as charge recombination. Despite this, the driving force dependence can be rationalized in terms of Marcus theory.
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