Ultraschnelle, lichtinduzierte Primärprozesse im elektronisch angeregten Zustand des Grün Fluoreszierenden Proteins (GFP)
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Summary
A dynamical model is proposed which includes vibrational energy relaxation occuring on a timescale of 20 ps as a competitive process to the excited state proton transfer and explains the non-exponential dynamics as well as the isotope effect on the kinetics observed in experiments with deuterated GFP-samples.
- Type
- dissertation
- Published
- 2003-02-11
- Cited by
- 0
- References
- 83
- Access
- Open access
- OpenAlex
- https://openalex.org/W81592378
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:91816721
Keywords
Excited state, Chromophore, Green fluorescent protein, Chemistry, Fluorescence
References
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- Femtosecond-picosecond fluorescence studies on excited state dynamics of photoactive yellow protein from Ectothiorhodospira halophila
- Photon echo measurements in liquids: Numerical calculations with model systems
- The use of FRET imaging microscopy to detect protein-protein interactions and protein conformational changes in vivo.
- Picosecond Time‐Resolved Fluorescence from Blue‐Emitting Chromophore Variants Y66F and Y66H of the Green Fluorescent Protein
- Quantum Control of Population Transfer in Green Fluorescent Protein by Using Chirped Femtosecond Pulses
- Dynamics of fluorescence fluctuations in green fluorescent protein observed by fluorescence correlation spectroscopy.
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