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Articles

Development of a chemometric-assisted deep eutectic solvent-based microextraction procedure for extraction of caffeine in foods and beverages

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Pages 1139-1150 | Received 04 Mar 2019, Accepted 30 Apr 2019, Published online: 29 May 2019

References

  • Alpar N, Yardım Y, Şentürk Z. 2018. Selective and simultaneous determination of total chlorogenic acids, vanillin and caffeine in foods and beverages by adsorptive stripping voltammetry using a cathodically pretreated boron-doped diamond electrode. Sens Actuators B. 257:398–408.
  • Amini T, Hashemi P. 2018. Preconcentration and GC–MS determination of caffeine in tea and coffee using homogeneous liquid–liquid microextraction based on solvents volume ratio alteration. J Chromatogr B. 1092:252–257.
  • Bezerra MA, Santelli RE, Oliveira EP, Villar LS, Escaleira LA. 2008. Response surface methodology (RSM) as a tool for optimization in analytical chemistry. Talanta. 76(5):965–977.
  • Cappelletti S, Daria P, Sani G, Aromatario M. 2015. Caffeine: cognitive and physical performance enhancer or psychoactive drug? Curr Neuropharmacol. 13(1):71–88.
  • Carolina Soto V, Jofré VP, Galmarini CR, Silva MF. 2016. Determination of alkaloids in onion nectar by micellar electrokinetic chromatography. Electrophoresis. 37(13):1909–1915.
  • Dil EA, Ghaedi M, Asfaram A, Hajati S, Mehrabi F, Goudarzi A. 2017. Preparation of nanomaterials for the ultrasound-enhanced removal of Pb2+ ions and malachite green dye: chemometric optimization and modeling. Ultrason Sonochem. 34:677–691.
  • Frizzarin RM, Maya F, Estela JM, Cerdà V. 2016. Fully-automated in-syringe dispersive liquid-liquid microextraction for the determination of caffeine in coffee beverages. Food Chem. 212:759–767.
  • Heydari R, Mousavi M. 2016. Simultaneous determination of saccharine, caffeine, salicylic acid and benzoic acid in different matrixes by salt and air-assisted homogeneous liquid-liquid extraction and high-performance liquid chromatography. J Chil Chem Soc. 61(3):3090–3094.
  • Iso I, Oiml B. 1995. Guide to the expression of uncertainty in measurement, BIPM/IEC/IFCC /ISO/IUPAC/OIML. Geneva (Switzerland): International Organization for Standardization, Geneva, Switzerland.
  • Konieczka P, Namieśnik J. 2010. Estimating uncertainty in analytical procedures based on chromatographic techniques. J Chromatogr A. 1217(6):882–891.
  • Mäkelä M. 2017. Experimental design and response surface methodology in energy applications: a tutorial review. Energy Convers Manage. 151:630–640.
  • Marra MC, Cunha RR, Vidal DTR, Munoz RAA, Lago CL, Richter EM. 2014. Ultra-fast determination of caffeine, dipyrone, and acetylsalicylic acid by capillary electrophoresis with capacitively coupled contactless conductivity detection and identification of degradation products. J Chromatogr A. 1327:149–154.
  • Oellig C, Schunck J, Schwack W. 2018. Determination of caffeine, theobromine and theophylline in mate beer and mate soft drinks by high-performance thin-layer chromatography. J Chromatogr A. 1533:208–212.
  • Peri-Okonny UL, Wang SX, Stubbs RJ, Guzman NA. 2005. Determination of caffeine and its metabolites in urine by capillary electrophoresis-mass spectrometry. Electrophoresis. 26(13):2652–2663.
  • Rahim AA, Nofrizal S, Saad B. 2014. Rapid tea catechins and caffeine determination by HPLC using microwave-assisted extraction and silica monolithic column. Food Chem. 147:262–268.
  • Salinas-Vargas ME, Cañizares-Macías MP. 2014. On-line solid–phase extraction using a C18 minicolumn coupled to a flow injection system for determination of caffeine in green and roasted coffee beans. Food Chem. 147:182–188.
  • Savasari M, Emadi M, Bahmanyar MA, Biparva P. 2015. Optimization of Cd (II) removal from aqueous solution by ascorbic acid-stabilized zero valent iron nanoparticles using response surface methodology. J Ind Eng Chem. 21:1403–1409.
  • Sereshti H, Khosraviani M, Samadi S, Amini-Fazl MS. 2014. Simultaneous determination of theophylline, theobromine and caffeine in different tea beverages by graphene-oxide based ultrasonic-assisted dispersive micro solid-phase extraction combined with HPLC-UV. RSC Adv. 4(87):47114–47120.
  • Sereshti H, Samadi S. 2014. A rapid and simple determination of caffeine in teas, coffees and eight beverages. Food Chem. 158:8–13.
  • Shishov A, Volodina N, Nechaeva D, Gagarinova S, Bulatov A. 2019. An automated homogeneous liquid-liquid microextraction based on deep eutectic solvent for the HPLC-UV determination of caffeine in beverages. Microchem J. 144:469–473.
  • Shrivas K, Wu HF. 2007. Rapid determination of caffeine in one drop of beverages and foods using drop-to-drop solvent microextraction with gas chromatography/mass spectrometry. J Chromatogr A. 1170(1–2):9–14.
  • Sun YC, Zhang Y. 2011. Determination of caffeine in beverages by ultraviolet spectrophotometry. J Chem Res. 1:023.
  • Švorc LU, Tomčík P, Svítková J, Rievaj M, Bustin D. 2012. Voltammetric determination of caffeine in beverage samples on bare boron-doped diamond electrode. Food Chem. 135(3):1198–1204.
  • Tefera M, Geto A, Tessema M, Admassie S. 2016. Simultaneous determination of caffeine and paracetamol by square wave voltammetry at poly (4-amino-3-hydroxynaphthalene sulfonic acid)-modified glassy carbon electrode. Food Chem. 210:156–162.
  • Timofeeva I, Medinskaia K, Nikolaeva L, Kirsanov D, Bulatov A. 2016. Stepwise injection potentiometric determination of caffeine in saliva using single-drop microextraction combined with solvent exchange. Talanta. 150:655–660.
  • Trevisan MTS, Owen RW, Calatayud-Vernich P, Breuer A, Picó Y. 2017. Pesticide analysis in coffee leaves using a quick, easy, cheap, effective, rugged and safe approach and liquid chromatography tandem mass spectrometry: optimization of the clean-up step. J Chromatogr A. 1512:98–106.
  • Ulusoy Hİ, Yılmaz E, Soylak M. 2019. Magnetic solid phase extraction of trace paracetamol and caffeine in synthetic urine and wastewater samples by a using core shell hybrid material consisting of graphene oxide/multiwalled carbon nanotube/Fe3O4/SiO2. Microchem J. 145:843–851.
  • Viana C, Zemolin GM, Dal Molin TR, Gobo L, Ribeiro SM, Leal GC, Carvalho LM. 2018. Detection and determination of undeclared synthetic caffeine in weight loss formulations using HPLC-DAD and UHPLC-MS/MS. J Pharm Anal. 8(6):366–372.
  • Wang H, Chen L, Xu Y, Zeng Q, Zhang X, Zhao Q, Ding L. 2011. Dynamic microwave-assisted extraction coupled on-line with clean-up for determination of caffeine in tea. LWT. 44(6):1490–1495.
  • Xia Z, Ni Y, Kokot S. 2013. Simultaneous determination of caffeine, theophylline and theobromine in food samples by a kinetic spectrophotometric method. Food Chem. 141(4):4087–4093.
  • Yilmaz E, Soylak M. 2016. Latest trends, green aspects, and innovations in liquid-phase–based microextraction techniques: a review. Turk J Chem. 40(6):868–893.

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