Synchronous fluorescence spectroscopic study of solvatochromic curcumin dye

被引:177
作者
Patra, Digambara [1 ]
Barakat, Christelle [1 ]
机构
[1] Amer Univ Beirut, Dept Chem, Fac Arts & Sci, Beirut 11072020, Lebanon
关键词
Curcumin; Solvent polarity; SFS; PHOTOPHYSICAL PROPERTIES; ANTIOXIDANT MECHANISM; PI-STAR; SOLVENT; ENCAPSULATION; ENHANCEMENT; INCLUSION; PYRENE;
D O I
10.1016/j.saa.2011.04.016
中图分类号
O433 [光谱学];
学科分类号
0703 ; 070302 ;
摘要
Curcumin, the main yellow bioactive component of turmeric, has recently acquired attention by chemists due its wide range of potential biological applications as an antioxidant, an anti-inflammatory, and an anti-carcinogenic agent. This molecule fluoresces weakly and poorly soluble in water. In this detailed study of curcumin in thirteen different solvents, both the absorption and fluorescence spectra of curcumin was found to be broad, however, a narrower and simple synchronous fluorescence spectrum of curcumin was obtained at Delta lambda = 10-20 nm. Lippert-Mataga plot of curcumin in different solvents illustrated two sets of linearity which is consistent with the plot of Stokes' shift vs. the E(T)30. When Stokes's shift in wavenumber scale was replaced by synchronous fluorescence maximum in nanometer scale, the solvent polarity dependency measured by lambda(max)(SFS) vs. Lippert-Mataga plot or E(T)30 values offered similar trends as measured via Stokes' shift for protic and aprotic solvents for curcumin. Better linear correlation of lambda(max)(SFS) vs. pi* scale of solvent polarity was found compared to lambda(max)(abs) or lambda(max)(em) or Stokes' shift measurements. In Stokes' shift measurement both absorption/excitation as well as emission (fluorescence) spectra are required to compute the Stokes' shift in wavenumber scale, but measurement could be done in a very fast and simple way by taking a single scan of SFS avoiding calculation and obtain information about polarity of the solvent. Curcumin decay properties in all the solvents could be fitted well to a double-exponential decay function. (C) 2011 Elsevier B.V. All rights reserved.
引用
收藏
页码:1034 / 1041
页数:8
相关论文
共 42 条
[1]   Fluorescence enhancement of curcumin upon inclusion into parent and modified cyclodextrins [J].
Baglole, KN ;
Boland, PG ;
Wagner, BD .
JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY A-CHEMISTRY, 2005, 173 (03) :230-237
[2]  
Barik A, 2003, PHOTOCHEM PHOTOBIOL, V77, P597, DOI 10.1562/0031-8655(2003)077<0597:PSOBOC>2.0.CO
[3]  
2
[4]   Interaction of curcumin with human serum albumin: Thermodynamic properties, fluorescence energy transfer and denaturation effects [J].
Barik, Atanu ;
Mishra, Beena ;
Kunwar, Amit ;
Priyadarsini, K. Indira .
CHEMICAL PHYSICS LETTERS, 2007, 436 (1-3) :239-243
[5]   Polymeric nanoparticle-encapsulated curcumin (nanocurcumin"): A novel strategy for human cancer therapy" [J].
Bisht S. ;
Feldmann G. ;
Soni S. ;
Ravi R. ;
Karikar C. ;
Maitra A. ;
Maitra A. .
Journal of Nanobiotechnology, 5 (1)
[6]  
Chattopadhyay I, 2004, CURR SCI INDIA, V87, P44
[7]   SPECTRAL AND PHOTOCHEMICAL PROPERTIES OF CURCUMIN [J].
CHIGNELL, CF ;
BILSKI, P ;
RESZKA, KJ ;
MOTTEN, AG ;
SIK, RH ;
DAHL, TA .
PHOTOCHEMISTRY AND PHOTOBIOLOGY, 1994, 59 (03) :295-302
[8]   Encapsulation and controlled release of nutraceuticals using mesoporous silica capsules [J].
Clifford, Nigel W. ;
Iyer, K. Swaminathan ;
Raston, Colin L. .
JOURNAL OF MATERIALS CHEMISTRY, 2008, 18 (02) :162-165
[9]   Effect of Chain Length on the Photophysical Properties of Pyrene-Based Molecules Substituted with Extended Chains [J].
Degheili, Jad A. ;
Moustafa, Rasha M. ;
Patra, Digambara ;
Kaafarani, Bilal R. .
JOURNAL OF PHYSICAL CHEMISTRY A, 2009, 113 (07) :1244-1249
[10]   Spectroscopic and theoretical study of the electronic structure of curcumin and related fragment molecules [J].
Galasso, V. ;
Kovac, B. ;
Modelli, A. ;
Ottaviani, M. F. ;
Pichierri, F. .
JOURNAL OF PHYSICAL CHEMISTRY A, 2008, 112 (11) :2331-2338