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Stepwise Excited-state Double Proton Transfer and Fluorescence Decay Analysis
Tomasz Wróblewski1, Dzmitryi Ushakou2
1Institute of Exact and Technical Sciences, Pomeranian University in Słupsk, str. Arciszewskiego 22b, Słupsk, 76-200, Poland.
This study explores stepwise excited state intramolecular double proton transfer (ESIDPT) in molecules with multiple hydroxyl groups. Analyzing fluorescence decay kinetics reveals distinct emission bands from normal and tautomeric forms, crucial for understanding complex photophysical processes.
Area of Science:
- Photochemistry
- Physical Chemistry
- Molecular Spectroscopy
Background:
- Excited state intramolecular proton transfer (ESIPT) is a well-known photophysical process.
- Multiple hydroxyl groups in proximity can facilitate sequential ESIPT reactions.
- Stepwise excited state intramolecular double proton transfer (ESIDPT) involves consecutive proton transfers, forming multiple tautomers.
Purpose of the Study:
- To analyze the fluorescence decay kinetics of molecules exhibiting ESIDPT.
- To develop a theoretical framework for understanding fluorescence from normal and multiple tautomeric forms.
- To investigate the ESIDPT process in scutellarein as a model system.
Main Methods:
- Rigorous analysis of fluorescence decay kinetics.
- Development of a three-species model (normal form and two tautomers) for kinetic analysis.
- Quantum-chemical calculations applied to scutellarein.
Main Results:
- The study provides a theoretical framework for analyzing fluorescence decay in ESIDPT.
- The model accounts for emissions from the normal form and two distinct tautomers.
- Quantum-chemical calculations were performed for scutellarein, a relevant model compound.
Conclusions:
- Stepwise ESIDPT can lead to complex fluorescence spectra with multiple emission bands.
- The proposed kinetic model accurately describes systems with two successive proton transfers.
- Scutellarein serves as a suitable model for studying ESIDPT phenomena.
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