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Synthesis, spectral and photochemical properties of the styrylquinoline–naphthol dyad with a dioxytetramethylene bridge

Mikhail Fedorovich Budyka 1
Mikhail Fedorovich Budyka
Kristina Fanilevna Sadykova 1, 2
Kristina Fanilevna Sadykova
Tatyana Nikolaevna Gavrishova 1
Tatyana Nikolaevna Gavrishova
Published 2011-04-28
CommunicationVolume 21, Issue 3, 151-152
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Budyka M. F., Sadykova K. F., Gavrishova T. N. Synthesis, spectral and photochemical properties of the styrylquinoline–naphthol dyad with a dioxytetramethylene bridge // Mendeleev Communications. 2011. Vol. 21. No. 3. pp. 151-152.
GOST all authors (up to 50) Copy
Budyka M. F., Sadykova K. F., Gavrishova T. N. Synthesis, spectral and photochemical properties of the styrylquinoline–naphthol dyad with a dioxytetramethylene bridge // Mendeleev Communications. 2011. Vol. 21. No. 3. pp. 151-152.
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TY - JOUR
DO - 10.1016/j.mencom.2011.04.013
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2011.04.013
TI - Synthesis, spectral and photochemical properties of the styrylquinoline–naphthol dyad with a dioxytetramethylene bridge
T2 - Mendeleev Communications
AU - Budyka, Mikhail Fedorovich
AU - Sadykova, Kristina Fanilevna
AU - Gavrishova, Tatyana Nikolaevna
PY - 2011
DA - 2011/04/28
PB - Mendeleev Communications
SP - 151-152
IS - 3
VL - 21
ER -
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@article{2011_Budyka,
author = {Mikhail Fedorovich Budyka and Kristina Fanilevna Sadykova and Tatyana Nikolaevna Gavrishova},
title = {Synthesis, spectral and photochemical properties of the styrylquinoline–naphthol dyad with a dioxytetramethylene bridge},
journal = {Mendeleev Communications},
year = {2011},
volume = {21},
publisher = {Mendeleev Communications},
month = {Apr},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2011.04.013},
number = {3},
pages = {151--152},
doi = {10.1016/j.mencom.2011.04.013}
}
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Budyka, Mikhail Fedorovich, et al. “Synthesis, spectral and photochemical properties of the styrylquinoline–naphthol dyad with a dioxytetramethylene bridge.” Mendeleev Communications, vol. 21, no. 3, Apr. 2011, pp. 151-152. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2011.04.013.

Keywords

bichromophoric system
energy transfer
photoisomerization
styrylquinoline, naphthol

Abstract

The luminescence of 2-naphthol and 2-styrylquinoline fragments, intramolecular energy transfer from the former to the latter, and photoisomerization of the latter are observed in the newly synthesized bichromophoric dyad.

References

1.
Intramolecular excimer formation in bichromophoric molecules linked by a short flexible chain
De Schryver F.C., Collart P., Vandendriessche J., Goedeweeck R., Swinnen A.M., Van der Auweraer M.
Accounts of Chemical Research, 1987
4.
Proton, electron and energy transfer processes in excited phenol–olefin dyads
Jiménez M.C., Miranda M.A., Tormos R.
Chemical Society Reviews, 2005
5.
Excitation energy transfer in donor–bridge–acceptor systems
Albinsson B., Mårtensson J.
Physical Chemistry Chemical Physics, 2010
8.
Mimicking Photosynthetic Solar Energy Transduction
Gust D., Moore T.A., Moore A.L.
Accounts of Chemical Research, 2000
11.
Molecular devices
Balzani V., Ceroni P., Ferrer B.
Pure and Applied Chemistry, 2004
12.
Molecular switches controlled by light
Gust D., Moore T.A., Moore A.L.
Chemical Communications, 2006
13.
All Optical Full Adder Based on Intramolecular Electronic Energy Transfer in the Rhodamine−Azulene Bichromophoric System
Kuznetz O., Salman H., Eichen Y., Remacle F., Levine R.D., Speiser S.
Journal of Physical Chemistry C, 2008
14.
10.1016/j.mencom.2011.04.013_bib0070
Galiazzo
Gazz. Chim. Ital., 1990
15.
10.1016/j.mencom.2011.04.013_bib0075
Budyka
Khim. Vys. Energ., 2008
16.
Reconfigurable molecular logic gate operating in polymer film
Budyka M.F., Potashova N.I., Gavrishova T.N., Lee V.M.
Journal of Materials Chemistry A, 2009
17.
Photochemistry of “Super”-Photoacids. Solvent Effects
Solntsev K.M., Huppert D., Agmon N.
Journal of Physical Chemistry A, 1999
18.
F.-C. Huang, R.A. Jr. Galemmo and H. F. Campbell, US Patent 4 918 081, 1990.
19.
M. J. Frisch, G.W. Trucks, H.B. Schlegel, et al., Gaussian 03, Revision C.02, Gaussian, Inc., Wallingford CT, 2004.
20.
Pitfalls and limitations in the practical use of Förster’s theory of resonance energy transfer
Braslavsky S.E., Fron E., Rodríguez H.B., Román E.S., Scholes G.D., Schweitzer G., Valeur B., Wirz J.
Photochemical and Photobiological Sciences, 2008
22.
The Hydrogen Bond in the Solid State
Steiner T.
Angewandte Chemie - International Edition, 2002