volume 113 issue 33 pages 9365-9375

Photophysical Properties of Structurally and Electronically Modified Flavin Derivatives Determined by Spectroscopy and Theoretical Calculations

Publication typeJournal Article
Publication date2009-07-29
scimago Q2
wos Q2
SJR0.634
CiteScore4.8
Impact factor2.8
ISSN10895639, 15205215
PubMed ID:  19639947
Physical and Theoretical Chemistry
Abstract
Four different riboflavin (RF) derivatives, two electronically modified compounds (1- and 5-deazariboflavin, 1DRF and 5DRF) and two sterically modified compounds (7,8-didemethyl- and 8-isopropylriboflavin, DMRF and iprRF), were subjected to a combination of time-resolved measurements (absorption and fluorescence) and high-level quantum chemical investigations. Both alkyl-modified flavins showed similar fluorescence properties as the parent compound, yet 5DRF had a larger quantum yield of fluorescence (PhiF = 0.52) than RF (PhiF = 0.27). Interestingly, 1DRF did not show fluorescence at all under these steady state conditions. The triplet quantum yield was different for the modified flavins such that no triplet formation was found for 1DRF, whereas the other compounds all formed triplet states (PhiTR for 5DRF of 0.64 and 0.50 and 0.23 for iprRF and DMRF, respectively). The triplet states of the two alkyl-modified flavins decayed with similar time constants as the parent compound, whereas a shorter lifetime was measured for 5DRF (tauTR = 15 micros, compared to tauTR = 29 micros for RF). In the calculations, the flavin derivatives were modeled as lumiflavins, that is, without the ribityl chain. We conclude that for aqueous solutions of DMRF, iprRF, and 5DRF intersystem crossing (ISC) takes place from the S1 1(pipi*) to the T2 3(pipi*) state by a vibronic spin-orbit coupling mechanism, a process common to most flavins, whereas ISC is slow in excited 1DRF due to the absence of a close-by triplet state.
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Salzmann S. et al. Photophysical Properties of Structurally and Electronically Modified Flavin Derivatives Determined by Spectroscopy and Theoretical Calculations // Journal of Physical Chemistry A. 2009. Vol. 113. No. 33. pp. 9365-9375.
GOST all authors (up to 50) Copy
Salzmann S., Martínez-Junza V., Zorn B., Braslavsky S. E., Mansurova M., Marian C. M., Gartner W. Photophysical Properties of Structurally and Electronically Modified Flavin Derivatives Determined by Spectroscopy and Theoretical Calculations // Journal of Physical Chemistry A. 2009. Vol. 113. No. 33. pp. 9365-9375.
RIS |
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RIS Copy
TY - JOUR
DO - 10.1021/jp905724b
UR - https://doi.org/10.1021/jp905724b
TI - Photophysical Properties of Structurally and Electronically Modified Flavin Derivatives Determined by Spectroscopy and Theoretical Calculations
T2 - Journal of Physical Chemistry A
AU - Salzmann, Susanne
AU - Martínez-Junza, Víctor
AU - Zorn, Björn
AU - Braslavsky, Silvia E.
AU - Mansurova, Madina
AU - Marian, Christel M.
AU - Gartner, Wolfgang
PY - 2009
DA - 2009/07/29
PB - American Chemical Society (ACS)
SP - 9365-9375
IS - 33
VL - 113
PMID - 19639947
SN - 1089-5639
SN - 1520-5215
ER -
BibTex |
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BibTex (up to 50 authors) Copy
@article{2009_Salzmann,
author = {Susanne Salzmann and Víctor Martínez-Junza and Björn Zorn and Silvia E. Braslavsky and Madina Mansurova and Christel M. Marian and Wolfgang Gartner},
title = {Photophysical Properties of Structurally and Electronically Modified Flavin Derivatives Determined by Spectroscopy and Theoretical Calculations},
journal = {Journal of Physical Chemistry A},
year = {2009},
volume = {113},
publisher = {American Chemical Society (ACS)},
month = {jul},
url = {https://doi.org/10.1021/jp905724b},
number = {33},
pages = {9365--9375},
doi = {10.1021/jp905724b}
}
MLA
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MLA Copy
Salzmann, Susanne, et al. “Photophysical Properties of Structurally and Electronically Modified Flavin Derivatives Determined by Spectroscopy and Theoretical Calculations.” Journal of Physical Chemistry A, vol. 113, no. 33, Jul. 2009, pp. 9365-9375. https://doi.org/10.1021/jp905724b.