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Adiabatic electron transfer: comparison of modified theory with experiment
S F Nelsen1, R F Ismagilov, D A Trieber
1Department of Chemistry, University of Wisconsin, Madison, WI 53706-1396, USA. nelsen@chem.wisc.edu
Summary
Researchers studied electron transfer in bishydrazine radical cations. The charge transfer bands accurately predicted electron transfer rates, eliminating the need for tunneling corrections in these specific compounds.
Area of Science:
- Chemical kinetics
- Spectroscopy
- Electron transfer mechanisms
Background:
- Bishydrazines serve as model compounds for studying electron transfer.
- Radical cations of bishydrazines exhibit measurable electron transfer rate constants.
- Charge transfer bands provide insights into electronic transitions.
Purpose of the Study:
- To compare observed and calculated electron transfer rate constants for bishydrazine radical cations.
- To investigate the relationship between charge transfer bands and electron transfer dynamics.
- To determine if tunneling corrections are necessary for these systems.
Main Methods:
- Synthesis and characterization of six bishydrazine compounds.
- Measurement of electron transfer rate constants using dynamic electron spin resonance spectroscopy.
- Analysis of charge transfer bands to determine adiabatic surface shapes.
Main Results:
- Electron transfer rate constants were small enough for dynamic electron spin resonance spectroscopy.
- Charge transfer bands corresponded to vertical excitations in the electron-transferring species.
- Adiabatic surface shapes derived from charge transfer bands accurately predicted electron transfer rate constants.
Conclusions:
- The shape of the adiabatic surface is accurately obtainable from charge transfer bands.
- Accurate prediction of electron transfer rate constants is possible without explicit tunneling corrections for these compounds.
- Bishydrazine radical cations are suitable models for fundamental electron transfer studies.