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Ultrathin film sensory system based on resonance energy transfer between the monolayers consisting of non-covalently linked fluorophores

Alexander Valentinovich Shokurov
Alvina Vladislavovna Alexandrova 1, 2
Alvina Vladislavovna Alexandrova
Irina Igorevna Shepeleva 1, 3
Irina Igorevna Shepeleva
Daria Sergeevna Kudinova 1, 2
Daria Sergeevna Kudinova
Pavel Aleksandrovich Panchenko
Vladimir Valentinovich Arslanov 1
Vladimir Valentinovich Arslanov
Sofiya L'vovna Selektor 1
Sofiya L'vovna Selektor
Published 2018-12-28
CommunicationVolume 29, Issue 1, 74-76
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Shokurov A. V. et al. Ultrathin film sensory system based on resonance energy transfer between the monolayers consisting of non-covalently linked fluorophores // Mendeleev Communications. 2018. Vol. 29. No. 1. pp. 74-76.
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Shokurov A. V., Alexandrova A. V., Shepeleva I. I., Kudinova D. S., Panchenko P. A., Arslanov V. V., Selektor S. L. Ultrathin film sensory system based on resonance energy transfer between the monolayers consisting of non-covalently linked fluorophores // Mendeleev Communications. 2018. Vol. 29. No. 1. pp. 74-76.
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TY - JOUR
DO - 10.1016/j.mencom.2019.01.025
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2019.01.025
TI - Ultrathin film sensory system based on resonance energy transfer between the monolayers consisting of non-covalently linked fluorophores
T2 - Mendeleev Communications
AU - Shokurov, Alexander Valentinovich
AU - Alexandrova, Alvina Vladislavovna
AU - Shepeleva, Irina Igorevna
AU - Kudinova, Daria Sergeevna
AU - Panchenko, Pavel Aleksandrovich
AU - Arslanov, Vladimir Valentinovich
AU - Selektor, Sofiya L'vovna
PY - 2018
DA - 2018/12/28
PB - Mendeleev Communications
SP - 74-76
IS - 1
VL - 29
ER -
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@article{2018_Shokurov,
author = {Alexander Valentinovich Shokurov and Alvina Vladislavovna Alexandrova and Irina Igorevna Shepeleva and Daria Sergeevna Kudinova and Pavel Aleksandrovich Panchenko and Vladimir Valentinovich Arslanov and Sofiya L'vovna Selektor},
title = {Ultrathin film sensory system based on resonance energy transfer between the monolayers consisting of non-covalently linked fluorophores},
journal = {Mendeleev Communications},
year = {2018},
volume = {29},
publisher = {Mendeleev Communications},
month = {Dec},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2019.01.025},
number = {1},
pages = {74--76},
doi = {10.1016/j.mencom.2019.01.025}
}
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Shokurov, Alexander Valentinovich, et al. “Ultrathin film sensory system based on resonance energy transfer between the monolayers consisting of non-covalently linked fluorophores.” Mendeleev Communications, vol. 29, no. 1, Dec. 2018, pp. 74-76. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2019.01.025.

Abstract

An ultrathin film, wherein a resonance energy transfer (FRET) from the energy donor monolayer to the analyte sensitive acceptor monolayer is controlled by definable cation binding, was produced, thus proving the feasible concept of non-covalently linked FRET couple based sensors.

References

2.
Signaling Recognition Events with Fluorescent Sensors and Switches
de Silva A.P., Gunaratne H.Q., Gunnlaugsson T., Huxley A.J., McCoy C.P., Rademacher J.T., Rice T.E.
Chemical Reviews, 1997
3.
Fabrication of Phytic Acid Sensor Based on Mixed Phytase−Lipid Langmuir−Blodgett Films
Caseli L., Moraes M.L., Zucolotto V., Ferreira M., Nobre T.M., Zaniquelli M.E., Rodrigues Filho U.P., Oliveira O.N.
Langmuir, 2006
4.
Fluorescent sensors for Zn(2+) based on a fluorescein platform: synthesis, properties and intracellular distribution.
Burdette S.C., Walkup G.K., Spingler B., Tsien R.Y., Lippard S.J.
Journal of the American Chemical Society, 2001
6.
Colorimetric fluoride sensor based on 1,8-naphthalimide derivatives
Ren J., Wu Z., Zhou Y., Li Y., Xu Z.
Dyes and Pigments, 2011
7.
A new Cu2+-selective self-assembled fluorescent chemosensor based on thiacalix[4]arene
Hu X., Li C., Song X., Zhang D., Li Y.
Inorganic Chemistry Communication, 2011
9.
MCM−Enzyme−Supramolecular Hydrogel Hybrid as a Fluorescence Sensing Material for Polyanions of Biological Significance
12.
Self-assembled nanoscale biosensors based on quantum dot FRET donors
Medintz I.L., Clapp A.R., Mattoussi H., Goldman E.R., Fisher B., Mauro J.M.
Nature Materials, 2003
13.
FRET for lab-on-a-chip devices — current trends and future prospects
Varghese S.S., Zhu Y., Davis T.J., Trowell S.C.
Lab on a Chip, 2010
14.
Conjugated compounds in supramolecular informational systems: A review
Selektor S.L., Shokurov A.V.
Protection of Metals and Physical Chemistry of Surfaces, 2015
18.
Intra- and Interlayer Energy Transfer in Planar Systems Based on Amphiphilic Naphthalimide Derivatives
Selector S.L., Bogdanova L.B., Shokurov A.V., Panchenko P.A., Fedorova O.A., Arslanov V.V.
Macroheterocycles, 2014
19.
Shokurov A.V., Nikolayeva L.V., Novak D.N., Arslanov V.V., Selektor S.L.
Mendeleev Communications, 2017
20.
Förster energy transfer from a semiconductor quantum well to an organic material overlayer
Basko D., La Rocca G.C., Bassani F., Agranovich V.M.
European Physical Journal B, 1999
21.
Fluorescence Resonance Energy Transfer between organic dyes adsorbed onto nano-clay and Langmuir–Blodgett (LB) films
Hussain S.A., Chakraborty S., Bhattacharjee D., Schoonheydt R.A.
Spectrochimica Acta - Part A: Molecular and Biomolecular Spectroscopy, 2010
22.
Rational Design of Hemicyanine Langmuir Monolayers by Cation-Induced Preorganization of Their Structure for Sensory Response Enhancement.
Shokurov A.V., Shcherbina M.A., Bakirov A.V., Alexandrova A.V., Raitman O.A., Arslanov V.V., Chvalun S.N., Selektor S.L.
Langmuir, 2018
24.
Panchenko P.A., Fedorov Y.V., Fedorova O.A., Izmailov B.A., Vasnev V.A., Istratov V.V., Makeeva E.A., Rumyantseva M.N., Gaskov A.M.
Mendeleev Communications, 2011
25.
Cation-Controlled Excimer Packing in Langmuir-Blodgett Films of Hemicyanine Amphiphilic Chromoionophores.
Selektor S.L., Shcherbina M.A., Bakirov A.V., Batat P., Grauby-Heywang C., Grigorian S., Arslanov V.V., Chvalun S.N.
Langmuir, 2016
26.
Photophysical Studies on the Mono- and Dichromophoric Hemicyanine Dyes I. Photoelectric Conversion from the Dye Modified ITO Electrodes
Huang Y., Cheng T., Li F., Huang C., Hou T., Yu A., Zhao X., Xu X.
Journal of Physical Chemistry B, 2002
27.
28.
Factors Affecting the Structural Organization of Hemicyanine Chromoionophores in Langmuir Monolayers
Shokurov A.V., Silant’yeva D.A., Arslanov V.V., Selektor S.L.
Macroheterocycles, 2016