A rapid spectrophotometric method for simultaneous determination of catechol, hydroquinone, and resorcinol in water samples using mean centering spectra

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Research Paper 01/04/2017
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A rapid spectrophotometric method for simultaneous determination of catechol, hydroquinone, and resorcinol in water samples using mean centering spectra

Somayeh Heydari, Mohadeseh Hosseinpour Zaryabi
J. Bio. Env. Sci.10( 4), 217-224, April 2017.
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Abstract

A simple and sensitive spectrophotometric method was developed for determination of ternary mixtures catechol (CT), hydroquinone (HQ) and resorcinol (RS) without previous separation. The method is based on mean centering of second ratio spectra. The mathematical explanation of the procedure is illustrated. The method was evaluated by determination CT, HQ and RS in synthetic ternary mixtures. The procedure was successfully applied to the simultaneous determination of these analytes in water samples.

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Ahammad AJS, Rahman MM, Xu GR, Kim S, Lee JJ. 2011. Highly sensitive and simultaneous determination of hydroquinone and catechol at poly (thionine) modified glassy carbon electrode. Electrochimica Acta 56, 5266-5271.

Afkhami A, Bahram M, Madrakian T. 2005. Simultaneous spectrophotometer determination of iodate and bromate in water samples by the method of mean centering of ratio kinetic profiles, Journal of Hazardous Materials 123, 250-255.

Afkhami A, Bahram M. 2006. A Novel spectrophotometer method for the simultaneous kinetic analysis of ternary mixtures by mean centering of ratio kinetic profiles, Talanta 68, 1148-1155.

Afkhami A, Khatami HA. 2001. Indirect Kinetic–Spectrophotometer Determination of Resorcinol, Catechol, and Hydroquinone, Journal of Analytical Chemistry 56, 487-490.

Ahammad AJS, Rahman MM, Xu GR, Kim S, Lee JJ. 2011. “Highly sensitive and simultaneous determination of hydroquinone and catechol at poly (thionine) modified glassy carbon electrode,” Electrochimica Acta 56, 5266-5271.

Bahram M, Madrakian T, Bozorgzadeh E, Afkhami A. 2007. Micelle mediated extraction for simultaneous spectrophotometer determination of aluminum and beryllium using mean centering of ratio spectra, Talanta 72, 408-414.

Chamsaz M, Arbabzavar MH, Heidari T, Hajinia A, Salehi T. 2010. Spectrophotometer Determination of Trace Amounts of Beryllium in Natural Water Using Mean Centering of Ratio Spectra Method and Partial Least Squares Regression, Asian Journal of Chemistry 22(6), 4717-4726.

Cui H, Zhang Q, Myint A, Ge X, Liu L. 2006. Chemiluminescence’s of cerium (IV) -Rhoda mine 6G-phenolic compound system. Journal of Photochemistry and Photobiology A 181, 238-245.

Feng X, Gao WW, Zhou SH, Shi HY, Huang H, Song WB. 2013. Discrimination and simultaneous determination of hydroquinone and catechol by tunable polymerization of imidazolium- based ionic liquidon multi-walled carbon nanotube surfaces. Analytica Chimica Acta 805, 36-44.

Guan N, Zeng Z, Wang Y, Fu E, Cheng J. 2000. Open tubular capillary electro chromatography in fused-silica capillaries chemically bonded with macrocy clicdioxopoly amine. Analytica Chimica Acta 418, 145-151.

Kamyabi MA. 2009. Simultaneous Spectrophotometer Determination of Paracetamol and p-Aminophenol by Using Mean Centering of Ratio Kinetic Profiles., Journal of the Chinese Chemical Society 56, 142-149.

Li DW, Li YT, Wei S, Long YT. 2010. Simultaneous determination of dihydroxybenzene isomers using disposable screen-printed electrode modified by multiwalled carbon nanotubes and gold Nan particles. Analytical Methods, 2, 837-843.

Lin WY, Long LL, Tan W. 2010. A highly sensitive fluorescent probe for detection of benzenethiols in environmental samples and living cells, Chemical Communications 46, 1503-1505.

Madrakian T, Moein R, Bahram M. 2008. Simultaneous Spectrophotometer Determination of Zinc and Nickel in water samples by Mean Centering of Ratio Kinetic Profiles, Journal of the Chinese Chemical Society 55, 788-793.

Madrakian T, Mohammadnejad M. 2007. Spectrophotometer Determination of Levodopa and Carbidopa in Pharmaceutical Formulations and water samples by using Mean Centering of ratio Spectra and H Point Standard Addition Methods, Chemical and Pharmaceutical Bulletin 55, 865- 870.

Moldoveanu S, Kiser M. 2007. Gas chromatography/mass spectrometry versus liquid chromatography/fluorescence detection in the analysis of phenols in mainstream cigarette smoke. Journal of Chromatography A 1141, 90-97.

Nagaraja P, Vasantha R, Sunitha K. 2001. A sensitive and selective spectrophotometer estimation of catechol derivatives in pharmaceutical preparations. Talanta 55, 1039-1046.

Pistonesi M, Di Nezio M, Centurion M, Palomeque M, Lista A. Fernandez Band B. Determination of phenol, resorcinol and hydroquinone in air samples by synchronous fluorescence using partial least-squares (PLS). Talanta 69, 126-1268.

Sys M, Pekec B, Kalcher K, Vytras K. 2013. Amperometric Enzyme Carbon Paste-Based Biosensor for Quantification of Hydroquinone and Polyphenolic Antioxidant Capacity, International Journal of Electrochemical Science 8, 9030-9040.

Wang J, Park JN, Wei XY, Lee CW. 2003. “Room temperature heterogeneous hydroxylation of phenol with hydrogen peroxide over Fe2+, Co2+ ion-exchanged Na 𝛽 zeolite,” Chemical Communications, no 5, 628-629.

Wang L, Huang PF, Bai JY, Wang HJ, Zhang LY, Zhao YQ. 2007. Covalent modification of a glassy carbon electrode with penicillamine for simultaneous determination of hydroquinone and catechol, Micro chemical Acta 158, 151-157.

Yu J, Du W, Zhao F, Zeng B. 2009. High sensitive simultaneous determination of catechol and hydroquinone at mesoporous carbon CMK-3 electrode in comparison with multi-walled carbon nanotubes and Vulcan XC-72 carbon electrodes. Electrochemical Acta 54, 984-988.

Zhao DM, Zhang XH, Feng LJ, Wang S.F.2009. Simultaneous determination of hydroquinone and catechol at PASA/MWNTs composite film modified glassy carbon electrode, Colloids and Surfaces B 74, 317-321.

Zhou XH, Liu LH, Bai X, Shi HC. 2013. A reduced graphene oxide based biosensor for high-sensitive detection of phenols in water samples. Sensors and Actuators B 181, 661-667.