Plasmon Effect of Ag Nanoparticles on Förster Resonance Energy Transfer in a Series of Cationic Polymethine Dyes

被引:0
|
作者
E. V. Seliverstova
D. A. Temirbayeva
N. Kh. Ibrayev
A. A. Ishchenko
机构
[1] Buketov Karaganda State University,Institute of Molecular Nanophotonics
[2] National Academy of Sciences of Ukraine,Institute of Organic Chemistry
来源
关键词
Ag nanoparticles; energy transfer (FRET); polymethine dyes; plasmon effect;
D O I
暂无
中图分类号
学科分类号
摘要
Enhanced Förster resonance energy transfer was found for donor–acceptor pairs of cationic dyes in the presences of silver nanoparticles (NPs) in solution. This enhancement is attributed both to an increase in the fluorescence intensity of the dyes and the direct effect of local plasmon resonance of the NPs on the energy transfer rate constant. Even in the case of low energy transfer efficiency, a significant increase in the rate constant of this process in the presence of silver NPs was found to be possible.
引用
收藏
页码:115 / 124
页数:9
相关论文
共 50 条
  • [21] Size effect of Ag nanoparticles on surface plasmon resonance
    Lee, Kuang-Che
    Lin, Su-Jien
    Lin, Chih-Hong
    Tsai, Chih-Song
    Lu, Yu-Jen
    SURFACE & COATINGS TECHNOLOGY, 2008, 202 (22-23): : 5339 - 5342
  • [22] Restricted state selection in fluorescent protein Förster resonance energy transfer
    Larijani, B. (banafshe.larijani@cancer.org.uk), 1600, American Chemical Society (135):
  • [23] Freezing Conformers for Gas-Phase Förster Resonance Energy Transfer
    Lindkvist, Thomas Toft
    Djavani-Tabrizi, Iden
    Chen, Li
    Nielsen, Steen Brondsted
    CHEMPLUSCHEM, 2024, 89 (12):
  • [24] Effect of plasmon resonance of metal nanoparticles on spectral-luminescent properties of polymethine dye
    Ibrayev, N. Kh
    Seliverstova, E., V
    Zhumabay, N. D.
    Omarova, G. S.
    Ishchenko, A. A.
    BULLETIN OF THE UNIVERSITY OF KARAGANDA-PHYSICS, 2018, 3 (91): : 37 - 41
  • [25] Förster resonance energy transfer in hybrid associates of colloidal Ag2S quantum dots with thionine molecules
    Oleg V. Ovchinnikov
    Mikhail S. Smirnov
    Tamara S. Kondratenko
    Sergey A. Ambrosevich
    Mikhail T. Metlin
    Irina G. Grevtseva
    Aleksey S. Perepelitsa
    Journal of Nanoparticle Research, 2017, 19
  • [26] Theoretical/Numerical Studies of the Nanoscale-Cavity Effects on Dipole Emission, Förster Resonance Energy Transfer, and Surface Plasmon Coupling
    Yang Kuo
    C. C. (Chih-Chung) Yang
    Plasmonics, 2024, 19 : 273 - 285
  • [27] Pitfalls and limitations in the practical use of Förster’s theory of resonance energy transfer
    Silvia E. Braslavsky
    Eduard Fron
    Hernán B. Rodríguez
    Enrique San Román
    Gregory D. Scholes
    Gerd Schweitzer
    Bernard Valeur
    Jakob Wirz
    Photochemical & Photobiological Sciences, 2008, 7 : 1444 - 1448
  • [28] A dark green fluorescent protein as an acceptor for measurement of Förster resonance energy transfer
    Hideji Murakoshi
    Akihiro C. E. Shibata
    Yoshihisa Nakahata
    Junichi Nabekura
    Scientific Reports, 5
  • [29] Damage detection through Förster Resonance Energy Transfer in mechanoresponsive polymer nanocomposites
    Wang, Meng
    Schwindt, Alexandra
    Wu, Kedi
    Qin, Ying
    Kwan, Allison
    Tongay, Sefaattin
    Green, Matthew D.
    Polymer, 2021, 212
  • [30] Membrane microheterogeneity: Förster resonance energy transfer characterization of lateral membrane domains
    Luís M. S. Loura
    Fábio Fernandes
    Manuel Prieto
    European Biophysics Journal, 2010, 39 : 589 - 607