Yıl: 2021 Cilt: 45 Sayı: 5 Sayfa Aralığı: 1327 - 1335 Metin Dili: İngilizce DOI: 10.3906/kim-2104-5 İndeks Tarihi: 30-06-2022

Ultrasound assisted supramolecular liquid phase microextraction procedure for Sudan I at trace level in environmental samples

Öz:
A method based on supramolecular liquid phase microextraction has been developed for the preconcentration and determination of trace levels of Sudan I. 1-decanol and tetrahydrofuran were used as supramolecular solvent components. Trace levels of Sudan I were extracted into the extraction solvent phase at pH = 4.0 Analytical parameters such as pH value, supramolecular solvent volume, ultrasonication, centrifugation, model solution volume, matrix effects have been optimized. The limit of detection and the limit of quantification values for Sudan I were calculated as $1.74 μg L^{−14} and 5.75 μg 43^{L−1},4 respectively. In order to determine the accuracy of the method, addition and recovery studies were carried out to environmental samples.
Anahtar Kelime:

Belge Türü: Makale Makale Türü: Araştırma Makalesi Erişim Türü: Erişime Açık
  • 1. Roriz MS, Osma JF, Teixeira JA, Rodríguez Couto S. Application of response surface methodological approach to optimise Reactive Black 5 decolouration by crude laccase from Trametes pubescens. Journal of Hazardous Materials 2009; 169: 691-696.
  • 2. Aresta A, De Vietro N, Zambonin C. Ultra-trace determination of Sudan I, II, III, and IV in wastewater by solid-phase microextraction (SPME) and on-line solid-phase extraction (SPE) with high-performance liquid chromatography (HPLC). Analytical Letters 2020; 53 (16): 2559-2570.
  • 3. Smirnova SV, Lyskovtseva KA, Pletnev IV. Extraction and determination of synthetic food dyes using tetraalkylammonium based liquidliquid extraction. Microchemical Journal 2021; 162: 105833.
  • 4. Zhou Q, Zhao K, Xing A. Dispersive liquid-liquid microextraction combined with high-performance liquid chromatography for the enrichment and sensitive determination of Sudan Red pollutants in water samples. Journal of Separation Science 2014; 37 (22): 3347– 3353.
  • 5. Zamzam NS, Rahman MHA, Ghany MFA. UPLC-MS/MS analysis of Sudan I, butylated-hydroxytoluene and its major metabolites from sampling sites along the Nile River-Egypt: Environmentally evaluated study. Microchemical Journal 2020; 153: 104432.
  • 6. Ebrahimi-Tazangi F, Beitollahi H, Hekmatara H, Seyed-Yazdi J. Design of a new electrochemical sensor based on the CuO/GO nanocomposites: simultaneous determination of Sudan I and bisphenol A. Journal of the Iranian Chemical Society 2021; 18: 191-199.
  • 7. Yigit S, Tuzen M, Soylak M, Dogan M. Supramolecular solvent microextraction of Sudan blue II in environmental samples prior to its spectrophotometric determination. International Journal of Environmental Analytical Chemistry 2016; 96 (6): 568-575.
  • 8. Benmassaoud Y, Murtada K, Salghi R, Zougagh M, Ríos Á. Surface polymers on multiwalled carbon nanotubes for selective extraction and electrochemical determination of rhodamine B in food samples. Molecules 2021; 26 (9): 2670.
  • 9. Soylak M, Sahin U, Elci L. Spectrophotometric determination of molybdenum in steel samples utilizing selective sorbent extraction on Amberlite XAD-8 resin. Analytica Chimica Acta 1996; 322: 111-115.
  • 10. Tamer Y, Ozeren MD, Berber H. High adsorption performance of graphene oxide doped double network hydrogels for removal of azo dyes from water and their kinetics. Journal of Polymers and the Environment 2021. doi: 10.1007/s10924-021-02162-x
  • 11. Du LJ, Hu YH, Wang QY, Zhang QD, Chen YB et al. Crown ether microfunctionalized carbon nanotubes for dispersive micro-solid-phase extraction of sudan dyes and their metabolites. Food Chemistry 2018; 262: 118-128.
  • 12. Kılınc E, Celik KS, Bilgetekin H. γ-Fe2O3 magnetic nanoparticle functionalized with carboxylated multi walled carbon nanotube for magnetic solid phase extractions and determinations of Sudan dyes and Para Red in food samples. Food Chemistry 2018; 242: 533-537.
  • 13. Benmassaoud Y, Villasenor MJ, Salghi R, Jodeh S, Algarra M et al. Magnetic/non-magnetic argan press cake nanocellulose for the selective extraction of sudan dyes in food samples prior to the determination by capillary liquid chromatograpy. Talanta 2017; 166: 63-69.
  • 14. Xu B, Wang Y, Jin R, Li X, Song D et al. Magnetic solid-phase extraction based on Fe3O4@polyaniline particles followed by ultrafast liquid chromatography for determination of Sudan dyes in environmental water samples. Analytical Methods 2015; 7 (4): 1606–1614.
  • 15. Zengin HB, Gurkan R. Application of a novel poly(SMAm)-Tris-Fe3O4 nanocomposite for selective extraction and enrichment of Cu(I) /Cu(II) from beer, soft drinks and wine samples, and speciation analysis by micro-volume UV–Vis spectrophotometry. Talanta 2020; 224: 121789.
  • 16. Divrikli U, Soylak M, Elci L. Separation and enrichment of gallium (III) as 4-(2-thiazolylazo) resorcinol (TAR) complex by solid phase extraction on amberlite XAD-4 adsorption resin. Analytical Letters 2003; 36: 839-852.
  • 17. Rezaee M, Yamini Y, Faraji M. Evolution of dispersive liquid-liquid microextraction method. Journal of Chromatography A 2010; 1217 (16): 2342-2357.
  • 18. Viegas O, Esteves C, Rocha J, Melo A, Ferreira IMPLVO. Simultaneous determination of melatonin and trans-resveratrol in wine by dispersive liquid–liquid microextraction followed by HPLC-FLD. Food Chemistry 2021; 339: 128091.
  • 19. Nemati M, Farajzadeh MA, Mohebbi A, Khodadadeian F, Afshar Mogaddam MR. Development of a stir bar sorptive extraction method coupled to solidification of floating droplets dispersive liquid–liquid microextraction based on deep eutectic solvents for the extraction of acidic pesticides from tomato samples. Journal of Separation Science 2020; 43 (6): 1119-1127.
  • 20. Massadeh AM, Alhusban AA. A developing method for preconcentration and determination of Pb, Cd, Al and As in different herbal pharmaceutical dosage forms using chelex-100. Chemical Papers 2021; 75: 3563-3573.
  • 21. Wang X, He F, Zhang L, Yu A. Application of micro-nanostructured magnetite in separating tetrabromobisphenol A and hexabromocyclododecane from environmental water by magnetic solid phase extraction. PLoS ONE 2021; 16 :e0251021.
  • 22. Soylak M, Agirbas M, Yilmaz E. A new strategy for the combination of supramolecular liquid phase microextraction and UV–Vis spectrophotometric determination for traces of maneb in food and water samples. Food Chemistry 2021; 338: 128068.
  • 23. Yuvali D, Seyhaneyildizi M, Soylak M, Narin İ, Yilmaz E. An environment-friendly and rapid liquid-liquid microextraction based on new synthesized hydrophobic deep eutectic solvent for separation and preconcentration of erythrosine (E127) in biological and pharmaceutical samples. Spectrochimica Acta - Part A: Molecular and Biomolecular Spectroscopy 2021; 244: 118842.
  • 24. Bulgurcuoglu AE, Durak BY, Chormey DS, Bakirdere S. Development of a switchable solvent liquid phase extraction method for the determination of chlorthiamid, ethyl parathion, penconazole and fludioxonil pesticides in well, tap and lake water samples by gas chromatography mass spectrometry. Microchemical Journal 2021; 168: 106381.
  • 25. Margui E, Hidalgo M. Analytical capabilities of two-phase hollow-fiber liquid phase microextraction for trace multielement determination in aqueous samples by means of portable total reflection X-ray instrumentation. Turkish Journal of Chemistry 2016; 40 (6): 1002-1011.
  • 26. Antolova T, Zaruba S, Sandrejová J, Kocurova L, Vishnikin AB et al. Spectrophotometric determination of mercury using vortex-assisted liquid-liquid microextraction. Turkish Journal of Chemistry 2016; 40 (6): 965-973.
  • 27. Bahrani S, Ghaedi M, Asfaram A, Mansoorkhani MJK, Javadian H. Rapid ultrasound-assisted microextraction of atorvastatin in the sample of blood plasma by nickel metal organic modified with alumina nanoparticles. Journal of Separation Science 2020; 43 (24): 4469-4479.
  • 28. Jouyban A, Farajzadeh MA, Afshar Mogaddam MR. Dispersive liquid–liquid microextraction based on solidification of deep eutectic solvent droplets for analysis of pesticides in farmer urine and plasma by gas chromatography–mass spectrometry. Journal of Chromatography B: Analytical Technologies in the Biomedical and Life Sciences 2019; 1124: 114-121.
  • 29. Farajzadeh MA, Mohebbi A, Pazhohan A, Nemati M, Afshar Mogaddam MR. Air–assisted liquid–liquid microextraction; principles and applications with analytical instruments. TrAC - Trends in Analytical Chemistry 2020; 122: 115734.
  • 30. Gouda AA, Subaihi A, El Hay SSA. Green supramolecular solvent-based liquid-phase microextraction method for spectrophotometric determination of aluminum in food, water, hair and urine samples. Current Analytical Chemistry 2019; 16 (5): 641-651.
  • 31. Altunay N, Elik A. A green and efficient vortex-assisted liquid-phase microextraction based on supramolecular solvent for UV–VIS determination of nitrite in processed meat and chicken products. Food Chemistry 2020; 332: 127395.
  • 32. Bajkacz S, Adamczewska P, Kokoszka K, Kycia-Slocka E, Sochacki A et al. Supramolecular solvent-based microextraction of selected anticonvulsant and nonsteroidal anti-ınflammatory drugs from sediment samples. Molecules 2020; 25 (23): 5671.
  • 33. Ozkantar N, Soylak M, Tuzen M. Determination of copper using supramolecular solvent-based microextraction for food, spices, and water samples prior to analysis by flame atomic absorption spectrometry. Atomic Spectroscopy 2019; 40 (1): 17-23.
  • 34. Khan M, Yilmaz E, Soylak M. Supramolecular solvent microextraction of uranium at trace levels from water and soil samples. Turkish Journal of Chemistry 2017; 41 (1): 61-69.
  • 35. Rajabi M, Hemmati M. Comparison of two polythiophene nanocomposites-based dispersive micro solid-phase extraction procedures coupled with salt-induced/magnetic separations for efficient preconcentration of toxic metal ions from food samples. Journal of Molecular Liquids 2021; 324: 114997.
  • 36. Al-Marghany A, Badjah Hadj Ahmed AY, AlOthman ZA, Sheikh M, Ghfar AA, Habila M. Fabrication of Schiff ’s base-functionalized porous carbon materials for the effective removal of toxic metals from wastewater. Arabian Journal of Geosciences 2021; 14 (5): 336.
  • 37. Erbas Z, Soylak M. A green and simple liquid-phase microextraction based on deep eutectic solvent for the erythrosine prior to its UV– VIS spectrophotometric detection. Journal of the Iranian Chemical Society 2020; 17 (10): 2675-2681.
  • 38. Chen S, Liu Y, Yan J, Wang C, Lu D. Fibrous g-C3N4@Tio2 nanocomposites-based dispersive micro-solid phase extraction for chromium speciation in cow milk by ICP-MS after digestion treatment with artificial gastric juice. Journal of AOAC International 2021; 104 (1): 129-136.
  • 39. Filik H., Giray D., Ceylan B., Apak R. A novel fiber optic spectrophotometric determination of nitrite using Safranin O and cloud point extraction. Talanta 2011; 85: 1818-1824.
  • 40. Tuzen M, Melek E, Soylak M. Solid-phase extraction of copper, iron and zinc ions on bacillus thuringiensis israelensis-loaded on Dowex optipore V-493. Journal of Hazardous Materials 2008; 159: 335-341.
  • 41. Yalcin S., Sezer S., Apak R. Characterization and lead(II), cadmium(II), nickel(II) biosorption of dried marine brown macro algae Cystoseira barbata. Environmental Science and Pollution Research 2012; 19 :3118-3125.
  • 42. Soylak M, Elci L, Narin I, Dogan M. Separation and preconcentration of gold, silver and palladium from some aluminum and manganese salts on an activated carbon column. Asian Journal of Chemistry 2001; 13: 699-703.
  • 43. Bakaraki Turan NB, Zaman BT, Arvas B, Yolacan Ç, Bakirdere S. Implementation of a spraying-assisted fine droplet formation-based simultaneous liquid-phase microextraction method for the determination of copper in clove extract samples. Chemical Papers 2021; 75 (6): 2929-2935.
  • 44. Liu W, Zhao W jun, Chen J bo, Yang M min. A cloud point extraction approach using Triton X-100 for the separation and preconcentration of Sudan dyes in chilli powder. Analytica Chimica Acta 2007; 605 (1): 41-45.
  • 45. Qi P, Zeng T, Wen Z, Liang X, Zhang X. Interference-free simultaneous determination of Sudan dyes in chili foods using solid phase extraction coupled with HPLC-DAD. Food Chemistry 2011; 125 (4): 1462-1467.
  • 46. Soylak M, Celik M, Uzcan F. Supramolecular solvent-based microextraction of Sudan Orange G at trace levels for its separation, preconcentration and spectrophotometric determination. International Journal of Environmental Analytical Chemistry 2020; 100 (8): 935-944.
  • 47. Karatepe A, Akalin C, Soylak M. Solid-phase extraction of some food dyes on sea sponge column and determination by UV–vis spectrophotometer. Desalination and Water Treatment 2016; 57 (53): 25822-25829.
  • 48. Sricharoen P, Limchoowong N, Techawongstien S, Chanthai S. New approach applying a pet fish air pump in liquid-phase microextraction for the determination of Sudan dyes in food samples by HPLC. Journal of Separation Science 2017; 40 (19): 3848-3856.
  • 49. Ge D, Shan Z, Pang T, Lu X, Wang B. Preparation of new hydrophobic deep eutectic solvents and their application in dispersive liquid– liquid microextraction of Sudan dyes from food samples. Analytical and Bioanalytical Chemistry 2021. doi: 10.1007/s00216-021-03337-0
APA Soylak M, ÖZALP Ö, Uzcan F (2021). Ultrasound assisted supramolecular liquid phase microextraction procedure for Sudan I at trace level in environmental samples. , 1327 - 1335. 10.3906/kim-2104-5
Chicago Soylak Mustafa,ÖZALP Özgür,Uzcan Furkan Ultrasound assisted supramolecular liquid phase microextraction procedure for Sudan I at trace level in environmental samples. (2021): 1327 - 1335. 10.3906/kim-2104-5
MLA Soylak Mustafa,ÖZALP Özgür,Uzcan Furkan Ultrasound assisted supramolecular liquid phase microextraction procedure for Sudan I at trace level in environmental samples. , 2021, ss.1327 - 1335. 10.3906/kim-2104-5
AMA Soylak M,ÖZALP Ö,Uzcan F Ultrasound assisted supramolecular liquid phase microextraction procedure for Sudan I at trace level in environmental samples. . 2021; 1327 - 1335. 10.3906/kim-2104-5
Vancouver Soylak M,ÖZALP Ö,Uzcan F Ultrasound assisted supramolecular liquid phase microextraction procedure for Sudan I at trace level in environmental samples. . 2021; 1327 - 1335. 10.3906/kim-2104-5
IEEE Soylak M,ÖZALP Ö,Uzcan F "Ultrasound assisted supramolecular liquid phase microextraction procedure for Sudan I at trace level in environmental samples." , ss.1327 - 1335, 2021. 10.3906/kim-2104-5
ISNAD Soylak, Mustafa vd. "Ultrasound assisted supramolecular liquid phase microextraction procedure for Sudan I at trace level in environmental samples". (2021), 1327-1335. https://doi.org/10.3906/kim-2104-5
APA Soylak M, ÖZALP Ö, Uzcan F (2021). Ultrasound assisted supramolecular liquid phase microextraction procedure for Sudan I at trace level in environmental samples. Turkish Journal of Chemistry, 45(5), 1327 - 1335. 10.3906/kim-2104-5
Chicago Soylak Mustafa,ÖZALP Özgür,Uzcan Furkan Ultrasound assisted supramolecular liquid phase microextraction procedure for Sudan I at trace level in environmental samples. Turkish Journal of Chemistry 45, no.5 (2021): 1327 - 1335. 10.3906/kim-2104-5
MLA Soylak Mustafa,ÖZALP Özgür,Uzcan Furkan Ultrasound assisted supramolecular liquid phase microextraction procedure for Sudan I at trace level in environmental samples. Turkish Journal of Chemistry, vol.45, no.5, 2021, ss.1327 - 1335. 10.3906/kim-2104-5
AMA Soylak M,ÖZALP Ö,Uzcan F Ultrasound assisted supramolecular liquid phase microextraction procedure for Sudan I at trace level in environmental samples. Turkish Journal of Chemistry. 2021; 45(5): 1327 - 1335. 10.3906/kim-2104-5
Vancouver Soylak M,ÖZALP Ö,Uzcan F Ultrasound assisted supramolecular liquid phase microextraction procedure for Sudan I at trace level in environmental samples. Turkish Journal of Chemistry. 2021; 45(5): 1327 - 1335. 10.3906/kim-2104-5
IEEE Soylak M,ÖZALP Ö,Uzcan F "Ultrasound assisted supramolecular liquid phase microextraction procedure for Sudan I at trace level in environmental samples." Turkish Journal of Chemistry, 45, ss.1327 - 1335, 2021. 10.3906/kim-2104-5
ISNAD Soylak, Mustafa vd. "Ultrasound assisted supramolecular liquid phase microextraction procedure for Sudan I at trace level in environmental samples". Turkish Journal of Chemistry 45/5 (2021), 1327-1335. https://doi.org/10.3906/kim-2104-5