Preview

Zhurnal Prikladnoii Spektroskopii

Advanced search
Open Access Open Access  Restricted Access Subscription Access

Analysis of Fluorescence Decay Kinetics in TwoComponent Systems: a Case Study of Indotricarbocyanine Dyes

Abstract

Using a two-component system based on indotricarbocyanine dye in low-polarity o-dichlorobenzene as an example, this article examines an approach to analyzing the spectral-kinetic properties of multicomponent systems aimed at determining a physically consistent model for approximating fluorescence decay kinetics. Data analysis was performed using a developed software module that allows one to determine the fluorescence decay duration of one or more centers and set conditions for the search region of the calculation model parameters. The ability to obtain a posteriori distribution of the approximation model parameters is also implemented to determine the range of their possible values. It has been shown that when deconvoluting the fluorescence decay curves of multicomponent systems, achieving the minimum value of χ2 (a value less than 1.2) is not a criterion for reliably determining the weighting coefficients and durations of fluorescence decay of the components; it is necessary to use not only mathematically determined calculation conditions, but also to compare the calculated parameters with other photophysical characteristics of each of the components.

About the Authors

D. S. Tarasau
A. N. Sevchenko Institute for Applied Physical Problems of Belarusian State University; Belarusian State University
Belarus

Minsk



M. P. Samtsov
A. N. Sevchenko Institute for Applied Physical Problems of Belarusian State University
Belarus

Minsk



E. S. Voropay
Belarusian State University
Belarus

Minsk



References

1. J. R. Lakowicz. Principles of Fluorescence Spectroscopy, Boston, Springer US (2006), https://doi.org/10.1007/978-0-387-46312-4

2. A. H. Upadhaya, P. K. Singh. Fluorescence Spectroscopy in Analytical Chemistry (2026) 471—507, https://doi.org/10.1016/B978-0-443-30270-1.00016-4

3. B. Valeur, J. C. Brochon. New Trends in Fluorescence Spectroscopy: Applications to Chemical and Life Sciences, Springer Science & Business Media (2012), https://doi.org/10.1007/978-3-642-56853-4

4. R. Cundall. Time-Resolved Fluorescence Spectroscopy in Biochemistry and Biology, Springer Science & Business Media (2013), https://doi.org/10.1007/978-1-4757-1634-4

5. M. Hof, R. Hutterer, V. Fidler. Fluorescence Spectroscopy in Biology: Advanced Methods and their Applications to Membranes, Proteins, DNA, and Cells, Springer Science & Business Media (2005), https://doi.org/10.1007/b138383

6. F. Ali, S. Kundu. Chem. Mater., 37, N 11 (2025) 3903—3926, https://doi.org/10.1021/acs.chemmater.5c00666

7. A. A. Istratov, O. F. Vyvenko. Rev. Sci. Instrum., 70, N 2 (1999) 1233—1257, https://doi.org/10.1063/1.1149581

8. M. vandeVen, M. Ameloot, B. Valeur, N. Boens. J. Fluoresc., 15, N 3 (2005) 377—413, https://doi.org/10.1007/s10895-005-2632-1

9. U. Noomnarm, R. M. Clegg. Photosynthesis Res., 101, N 2 (2009) 181—194, https://doi.org/10.1007/s11120-009-9457-8

10. F. de Jong, C. Martin, J. Hofkens, M. Van der Auweraer. Chem. A. Eur. J., 31, N 34 (2025) e202401799, https://doi.org/10.1002/chem.202401799

11. E. V. Péan, S. Dimitrov, C. S. De Castro, M. L. Davies. Phys. Chem. Chem. Phys., 22, N 48 (2020) 28345—28358, https://doi.org/10.1039/D0CP04950F

12. D. V. O. O’Connor, W. R. Ware, J. C. Andre. J. Phys. Chem., 83, N 10 (1979) 1333—1343

13. A. Grinvald, I. Z. Steinberg. Anal. Biochem., 59, N 2 (1974) 583—598, https://doi.org/10.1016/00032697(74)90312-1

14. M. Straume, S. G. Frasier-Cadoret, M. L. Johnson. Topics in Fluorescence Spectroscopy: Principles, Boston MA, Springer US (2002) 177—240, https://doi.org/10.1007/0-306-47058-6_4

15. K. Holmström, J. Petersson. Appl. Mathem. and Comp., 126, N 1 (2002) 31—61, https://doi.org/10.1016/S0096-3003(00)00138-7

16. J. Enderlein, R. Erdmann. Opt. Commun., 134, N 1-6 (1997) 371—378, https://doi.org/10.1016/S00304018(96)00384-7

17. D. J. S. Birch, R. E. Imhof. Topics in Fluorescence Spectroscopy: Techniques, Boston MA, Springer US (1991) 1—95

18. J. A. Jo, Q. Fang, T. Papaioannou, L. Marcu. J. Biomed. Optics, 9, N 4 (2004) 743—752, https://doi.org/10.1117/1.1752919

19. L. Marcu. Annals Biomed. Eng., 40, N 2 (2012) 304—331, https://doi.org/10.1007/s10439-011-0495-y

20. A. S. Dabir, C. A. Trivedi, Y. Ryu, P. Pande, J. A. Jo. J. Biomed. Opt., 14, N 2 (2009) 024030(1–13), https://doi.org/10.1117/1.3103342

21. J. M. Beechem, M. Ameloot, L. Brand. Chem. Phys. Lett., 120, N 4-5 (1985) 466—472, https://doi.org/10.1016/0009-2614(85)85642-6

22. J. Duhamel. Langmuir, 30, N 9 (2014) 2307—2324, https://doi.org/10.1021/la403714u

23. J. M. Beechem, E. Gratton, M. Ameloot, J. R. Knutson, L. Brand. Topics in Fluorescence Spectroscopy: Principles, Boston MA, Springer US (2002) 241—305, https://doi.org/10.1007/0-306-47058-6–5

24. G. Landl, T. Langthaler, H. W. Englt, H. F. Kauffmann. J. Comp. Phys., 95, N 1 (1991) 1—28, https://doi.org/10.1016/0021-9991(91)90250-O

25. A. K. Livesey, J. C. Brochon. Biophys. J., 52, N 5 (1987) 693—706, https://doi.org/10.1016/S00063495(87)83264-2

26. J. C. Brochon. Methods in Enzymology, 240, Academic Press (1994) 262—311, https://doi.org/10.1016/S0076-6879(94)40052-0

27. J. Skilling. Maximum Entropy and Bayesian Methods, New York, Kluwer Academic (1989) 45—52

28. D. R. James, W. R. Ware. Chem. Phys. Lett., 126, N 1 (1986) 7—11

29. A. Siemiarczuk, B. D. Wagner, W. R. Ware. J. Phys. Chem., 94, N 4 (1990) 1661—1666, https://doi.org/10.1021/j100367a080

30. Y. S. Liu, W. R. Ware. J. Phys. Chem., 97, N 22 (1993) 5980—5986, https://doi.org/10.1021/j100124a033

31. M. N. Berberan-Santos, E. N. Bodunov, B. Valeur. Fluorescence of Supermolecules, Polymers, and Nanosystems, Berlin Heidelberg, Springer Berlin Heidelberg (2007) 67—103, https://doi.org/10.1007/4243_2007_001

32. J. R. Lakowicz, H. Cherek, I. Gryczynski, N. Joshi, M. L. Johnson. Biophys. Chem., 28, N 1 (1987) 35—50, https://doi.org/10.1016/0301-4622(87)80073-X

33. J. R. Alcala, E. Gratton, F. G. Prendergast. Biophys. J., 51, N 6 (1987) 925—936, https://doi.org/10.1016/S0006-3495(87)83420-3

34. M. N. Berberan-Santos, B. Valeur. J. Lumin., 126, N 2 (2007) 263—272, https://doi.org/10.1016/j.jlumin.2006.07.004

35. B. K. Nunnally, H. He, L. C. Li, S. A. Tucker, L. B. McGown. Anal. Chem., 69, N 13 (1997) 2392—2397, https://doi.org/10.1021/ac961281p

36. T. O. Peulen. Spectroscopy J., 3, N 2 (2025) 16, https://doi.org/10.3390/spectroscj3020016

37. A. А. Lugovski, M. P. Samtsov, K. N. Kaplevsky, D. Tarasau, E. S. Voropay, P. T. Petrov, Y. P. Istomin. J. Photochem. Photobiol. A, 316 (2016) 31—36, https://doi.org/10.1016/j.jphotochem.2015.10.008

38. N. V. Kozobkova, M. P. Samtsov, A. P. Lugovski, N. V. Bel’ko, D. S. Tarasov, A. S. Kaprelyants, A. P. Savitsky, M. O. Shleeva. Int. J. Mol. Sci., 25, N 15 (2024) 8505, https://doi.org/10.3390/ijms25158505

39. М. П. Самцов, С. А. Тихомиров, Л. С. Ляшенко, Д. С. Тарасов, О. В. Буганов, В. А. Галевский, А. С. Сташевский, Е. С. Воропай. Журн. прикл. спектр., 80, № 2 (2013) 177—182 [M. P. Samtsov, S. A. Tikhomirov, L. S. Lyashenka, D. S. Tarasau, O. V. Buganov, V. A. Galievsky, A. S. Stasheuski, E. S. Voropay. J. Appl. Spectr., 80, N 2 (2013) 170—175], https://doi.org/10.1007/s10812-013-9741-4

40. М. П. Самцов, Д. С. Тарасов, Е. С. Воропай. Журн. прикл. спектр., 90, № 5 (2023) 738—746 [M. P. Samtsov, D. S. Tarasov, E. S. Voropay. J. Appl. Spectr., 90, N 5 (2023) 1029—1036], https://doi.org/10.1007/s10812-023-01628-1

41. А. Гордон, Р. Форд. Спутник химика, Москва, Мир (1976)

42. М. П. Самцов, Д. С. Тарасов, А. Е. Радько, К. А. Шевченко, А. А. Кирсанов, Н. В. Лобода, Е. С. Воропай. Журн. прикл. спектр., 92, № 5 (2025) 640—649 [M. P. Samtsov, D. S. Tarasau, A. E. Radzko, K. A. Shevchenko, A. A. Kirsanov, N. V. Laboda, E. S. Voropay. J. Appl. Spectr., 92, N 5 (2025) 1013—1021], https://doi.org/10.1007/s10812-025-02001-0

43. E. S. Voropai, K. F. Ermalitskaia, F. A. Ermalitski, A. E. Rad’ko, N. V. Rzheutsky, M. P. Samtsov. Instrum. and Exp. Techniques, 65, N 1 (2022) 83—88, https://doi.org/10.1134/S0020441222010213

44. Е. С. Воропай, Ф. А. Ермалицкий, А. Е. Радько, М. П. Самцов. Приборы и техника эксперимента, № 1 (2020) 151—152, https://doi.org/10.31857/S0032816222010232

45. A. V. Digris, E. G. Novikov, V. V. Skakun, V. V. Apanasovich. Fluorescence Spectroscopy and Microscopy: Methods and Protocols, Totowa NJ, Humana Press (2013) 257—277

46. T. Welton, C. Reichardt. Solvents and Solvent Effects in Organic Chemistry, Weinheim, John Wiley & Sons (2011)


Review

For citations:


Tarasau D.S., Samtsov M.P., Voropay E.S. Analysis of Fluorescence Decay Kinetics in TwoComponent Systems: a Case Study of Indotricarbocyanine Dyes. Zhurnal Prikladnoii Spektroskopii. 2026;93(5):640-651. (In Russ.)

Views: 2

JATS XML

ISSN 0514-7506 (Print)