Fluorescence quenching of biologically active carboxamide by aniline and carbon tetrachloride in different solvents using Stern-Volmer plots

Patil, N. R. ; Melavanki, R. M. ; Kapatkar, S. B. ; Chandrashekhar, K. ; Patil, H. D. ; Umapathy, Siva (2011) Fluorescence quenching of biologically active carboxamide by aniline and carbon tetrachloride in different solvents using Stern-Volmer plots Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 79 (5). pp. 1985-1991. ISSN 1386-1425

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Official URL: http://www.sciencedirect.com/science/article/pii/S...

Related URL: http://dx.doi.org/10.1016/j.saa.2011.05.104

Abstract

Fluorescence quenching of biologically active carboxamide namely (E)-2-(4-chlorobenzylideneamino)- N-(2-chlorophenyl)-4,5,6,7-tetrahydrobenzo[b]thiophene-3-carboxamide [ECNCTTC] by aniline and carbon tetrachloride (CCl4) quenchers in different solvents using steady state method and time resolved method using only one solvent has been carried out at room temperature to understand the role of quenching mechanisms. The Stern-Volmer plot has been found to be linear for all the solvents studied. The probability of quenching per encounter p (p') was determined in all the solvents and was found to be less than unity. Further, from the studies of rate parameters and life time measurements in n-heptane and cyclohexane with aniline and carbon tetrachloride as quenchers have been shown that, the phenomenon of quenching is generally governed by the well-known Stern-Volmer (S-V) plot. The activation energy Ea (or E'a) of quenching was determined using the literature values of activation energy of diffusion Ed and the experimentally determined values of p (or p'). It has been found that, the activation energy Ea (E'a) is greater than the activation energy for diffusion Ed in all solvents. Hence, from the magnitudes of Ea (or E'a) as well as p (or p') infer that, the quenching mechanism is not solely due to the material diffusion, but there is also contribution from the activation energy.

Item Type:Article
Source:Copyright of this article belongs to Elsevier Science.
Keywords:Fluorescence Quenching; ECNCTTC; Steady State and Time Resolved Method; S-V Plot; Activation Energy; Material Diffusion
ID Code:64980
Deposited On:15 Oct 2011 12:41
Last Modified:15 Oct 2011 12:41

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