Intermolecular quenching of excited singlet states by ferrocenyl derivatives: study with ketocyanine dyes
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[1] S. Féry-Forgues,et al. First fluorescent ferrocenyl compound as multiresponsive calcium-sensing device. NMR, electrochemical, and photophysical preliminary investigations in CH(3)CN. , 2002, Inorganic chemistry.
[2] K. G. Thomas,et al. Photoinduced Electron Transfer between 1,2,5-Triphenylpyrrolidinofullerene Cluster Aggregates and Electron Donors , 2001 .
[3] K. Rurack,et al. Substituted 1,5-Diphenyl-3-benzothiazol-2-yl-Δ2-pyrazolines: Synthesis, X-ray Structure, Photophysics, and Cation Complexation Properties , 2000 .
[4] S. Féry-Forgues,et al. Ferrocene and ferrocenyl derivatives in luminescent systems , 2000 .
[5] N. Marcotte,et al. Spectrophotometric evidence for the existence of rotamers in solutions of some ketocyanine dyes , 2000 .
[6] Suzanne Fery-Forgues,et al. ARE FLUORESCENCE QUANTUM YIELDS SO TRICKY TO MEASURE? A DEMONSTRATION USING FAMILIAR STATIONERY PRODUCTS , 1999 .
[7] Yan Yan,et al. Synthesis and Electrochemistry of Ferrocenylphthalocyanines , 1999 .
[8] K. Uosaki,et al. Effects of Alkylchain Length on the Efficiency of Photoinduced Electron Transfer at Gold Electrodes Modified with Self-Assembled Monolayers of Molecules Containing Porphyrin, Ferrocene and Thiol Separated each other by Alkylchains , 1999 .
[9] W. Rettig,et al. Global analysis of time-resolved emission – a powerful tool for the analytical discrimination of chemically similar ZnII and CdII complexes , 1998 .
[10] D. McMillin,et al. Reductive Quenching of Photoexcited Cu(dipp)(2)(+) and Cu(tptap)(2)(+) by Ferrocenes (dipp = 2,9-Diisopropyl-1,10-phenanthroline and tptap = 2,3,6,7-Tetraphenyl-1,4,5,8-tetraazaphenanthrene). , 1998, Inorganic chemistry.
[11] D. Dixon,et al. Intramolecular Quenching of Porphyrin Fluorescence by a Covalently Linked Ferrocene in DNA Scaffolding , 1998 .
[12] A. Bousseksou,et al. Reactivity of the Acyclic Diazadioxa Redox Active Ligand [(C(5)H(5))Fe(C(5)H(4)CH(2)N(CH(3))(CH(2))(2)OCH(2)-)](2): NMR, Electrochemical, and Mössbauer Studies. Crystal Structure of Its Copper Complex. , 1997, Inorganic chemistry.
[13] John H. Golbeck,et al. Electron Transfer Quenching and Photoinduced EPR of Hypericin and the Ciliate Photoreceptor Stentorin , 1997 .
[14] M. Prato,et al. Intramolecular Electron Transfer in Fullerene/Ferrocene Based Donor−Bridge−Acceptor Dyads , 1997 .
[15] R. Eisenberg,et al. Quenching studies of the excited state of (4,7-diphenylphenanthroline)(1-(ethoxycarbonyl)-1-cyanoethylene-2,2-dithiolato)platinum(II), Pt(Ph2phen)(ecda), by aromatic amines and metallocenes and determination of its excited-state reduction potential , 1994 .
[16] Rudolph A. Marcus,et al. Electron transfer reactions in chemistry. Theory and experiment , 1993 .
[17] H. Misawa,et al. Electrochemistry and fluorescence spectroscopy of a single, laser-trapped oil droplet in water: mass transfer across microdroplet-water interface , 1993 .
[18] D. Whitten,et al. Medium effects on photoinduced electron transfer in Langmuir-Blodgett films , 1992 .
[19] D. Whitten,et al. Photoinduced electron and energy transfer processes in supported multilayers: Energy delocalization and antennae effects , 1991 .
[20] G. Kavarnos. Fundamental Concepts of Photoinduced Electron Transfer , 1991 .
[21] P. Harvey,et al. Charge transfer emissive singlet excited states and photoinduced electron transfer properties in the diarylideneacetone compounds (RCHCH)2CO; R = phenyl, 1- and 2-naphthyl, 3-(N-ethylcarbazoyl), and 4-(C5H5)Fe(C5H4C6H4CHCH(CO)CHCHC6H5) , 1990 .
[22] W. Cherry,et al. Quenching of photosubstitution in ruthenium polypyridine complexes , 1985 .
[23] V. Mekler,et al. [The use of the annihilated delayed fluorescence phenomenon in the study of the structural organization of the sarcoplasmic reticulum]. , 1984, Biofizika.
[24] P. Luisi,et al. Correction for Inner Filter Effects in Fluorescence Spectroscopy , 1983 .
[25] J. Lakowicz. Principles of fluorescence spectroscopy , 1983 .
[26] I. L. Arbela. Flourescence quantum yield evaluation: corrections for re-absorption and re-emission , 1980 .
[27] K. K. Rohatgi-Mukherjee. Fundamentals of photochemistry , 1978 .
[28] M. Pilling,et al. Long range energy transfer by dipole–dipole and exchange interactions in rigid media and in liquids , 1976 .
[29] F. Wilkinson,et al. Triplet state quenching by ferrocene , 1975 .
[30] W. G. Herkstroeter. Triplet energies of azulene, .beta.-carotene, and ferrocene , 1975 .
[31] K. Kikuchi,et al. A Study of Quenching of Triplets by Ferrocene , 1974 .
[32] V. Mode,et al. Correction of inner filter effects in fluorescence spectrometry , 1974 .
[33] Harry B. Gray,et al. Electronic structure of metallocenes , 1971 .
[34] D. Wiles,et al. Electronic absorption spectra and photodecomposition of some substituted ferrocenes , 1968 .
[35] Sean P. McGlynn,et al. Electronic Absorption Spectrum of Ferrocene , 1967 .
[36] A. Fry,et al. Mechanisms of Photochemical Reactions in Solution. XLI.1Comparison of Rates of Fast Triplet Quenching Reactions , 1966 .
[37] D. Scott,et al. Erratum: Comprehensive Investigation of the Electronic Spectroscopy and Theoretical Treatments of Ferrocene and Nickelocene , 1961 .
[38] W. Ware. An Experimental Study of Energy Transfer between Unlike Molecules in Solution , 1961 .
[39] E. J. Bowen,et al. An Experimental Study of the Transfer of Energy of Excitation between Unlike Molecules in Liquid Solutions1 , 1954 .
[40] E. Schunck,et al. Zur Kenntniss des Flavopurpurins , 1877 .