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Original Articles

Simultaneous determination of antimony and boron in beverage and dairy products by flame atomic absorption spectrometry after separation and pre-concentration by cloud-point extraction

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Pages 271-281 | Received 25 Jun 2015, Accepted 09 Dec 2015, Published online: 11 Jan 2016

References

  • Alarcón-Angeles G, Corona-Avendaño S, Rojas-Hernández A, Romero-Romo MA, Ramírez-Silva MT. 2005. Evaluation of the acidity constants of the 4-hidroxy-5-[salicylideneamino]-2-7-naphthalenedisulfonic acid (azomethine-H) using UV-Vis spectrophotometry. Spectrochim Acta A. 61:313–319.
  • Alexovič M, Wieczorek M, Kozak J, Kos̈cielniak P, Balogh IS, Andruch V. 2015. An automatic, vigorous-injection assisted dispersive liquid-liquid microextraction technique for stopped-flow spectrophotometric detection of boron. Talanta. 133:127–133.
  • Altunay N, Gürkan R. 2015. A new cloud point extraction procedure for the determination of inorganic antimony species in beverages and biological samples by flame atomic absorption spectrometry. Food Chem. 175:507–515.
  • Calvo-Fornieles A, Torres AG, Alonso EV, Cordero MTS, Pavon JMC. 2011. Speciation of antimony (III) and antimony (V) in seawater by flow injection solid phase extraction coupled with on line hydride generation inductively coupled plasma mass spectrometry. J Anal Atom Spectrom. 26:1619–1626.
  • Cava-Montesinos P, Cervera ML, Pastor A, de la Guardia M. 2003. Determination of arsenic and antimony in milk by hydride generation atomic fluorescence spectrometry. Talanta. 60:787–799.
  • Cava-Montesinos P, Cervera ML, Pastor A, de la Guardia M. 2004. Determination of As, Sb, Se, Te and Bi in milk by slurry sampling hydride generation atomic fluorescence spectrometry. Talanta. 62:173–182.
  • Cava-Montesinos P, de La Guardia A, Teutsch C, Cervera ML, de la Guardia M. 2003. Non-chromatographic speciation analysis of arsenic and antimony in milk hydride generation atomic fluorescence spectrometry. Anal Chim Acta. 493:195–203.
  • Cheung-Chung SW, Kwong KP, Yau JC, Wong WW. 2008. Dietary exposure to antimony, lead and mercury of secondary school students in Hong Kong. Food Addit Contam. 25:831–840.
  • Dos Santos Depoi F, Pozebon D. 2012. The use of cloud point extraction and hydride generation for improving the Sb and Se limits of detection in ICP-OES. J Brazilian Chem Soc. 23:2211–2221.
  • EFSA. 2004. Opinion of the Scientific Panel on food additives, flavourings, processing aids and materials in contact with food (AFC) on a request from the Commission related to a 2nd list of substances for food contact materials. EFSA J. 24:1–13.
  • EFSA. 2012. Scientific Opinion on the safety evaluation of the active substances, sodium borohydride and palladium acetate for use in active food contact materials. EFSA J. 10:2642–2657.
  • El-Taher MA, Gabr AA. 1996. Medium effect on acidity constants of some heterocyclic nitrogen azomethines. Talanta. 43:1511–1518.
  • Fan ZF. 2007. Determination of antimony (III) and total antimony by single-drop microextraction combined with electrothermal atomic absorption spectrometry. Anal Chim Acta. 585:300–304.
  • Feng YL, Narasaki H, Chen HY, Tian LC. 1999. Speciation of antimony (III) and antimony (V) using hydride generation inductively coupled plasma atomic emission spectrometry combined with the rate of pre-reduction of antimony. Anal Chim Acta. 386:297–304.
  • Fuentes E, Pinochet H, Potin-Gautier M, De Graegori I. 2004. Fractionation and redox speciation of antimony in agricultural soils by HG-AFS and stability of Sb(III) and Sb(V) during extraction with different extractant solutions. J AOAC Int. 87:60–67.
  • Greenwood NN, Earnshaw A. 1997. Chemistry of the elements. 2nd ed. Oxford: Butterworth-Heinemann. ISBN 0080379419.
  • Hadjoudis E, Mavridis IM. 2004. Photochromism and Thermochromism of Schiff Bases in the Solid State: Structural Aspects. Chem Soc Rev. 33:579–588.
  • Haldimann M, Blanc A, Dudler V. 2007. Exposure to antimony from polyethylene terephthalate (PET) trays used in ready-to-eat meals. Food Addit Contam. 24:860–868.
  • Hansen C, Tsirigotaki A, Bak SA, Pergantis SA, Sturup S, Gammelgaard B, Hansen HR. 2010. Elevated antimony concentrations in commercial juices. J Environ Monit. 12:822–824.
  • Housecroft CE, Sharpe AG. 2005. Inorganic chemistry. 2nd ed. Upper Saddle (NJ): Pearson Prentice-Hall; 314–315.
  • Hunt CD, Friel JK, Johnson LK. 2004. Boron concentrations in milk from mothers of full-term and premature infants. Am J Clin Nutr. 80:1327–1333.
  • Jiang X, Wen S, Xiang G. 2010. Cloud point extraction combined with electrothermal atomic absorption spectrometry for the speciation of antimony (III) and antimony (V) in food packaging materials. J Hazard Mater. 175:146–150.
  • Koreňovská M. 2006. Determination of arsenic, antimony, and selenium by FI-HG-AAS in foods consumed in Slovakia. J Food Nutr Res. 45:84–88.
  • Krejcova A, Cernohorsky T. 2003. The determination of boron in tea and coffee by ICP–AES method. Food Chem. 82:303–308.
  • Li Y, Hu B, Jiang Z. 2006. On-line cloud point extraction combined with electrothermal vaporization inductively coupled plasma atomic emission spectrometry for the speciation of inorganic antimony in environmental and biological samples. Anal Chim Acta. 576:207–214.
  • Lopez-Garcia I, Vinas P, Romero-Romero P, Hernandez-Cordoba M. 2009. Preconcentration and determination of boron in milk, infant formula, and honey samples by solid phase extraction-ETAAS. Spectrochim Acta B. 64:179–183.
  • Maher W, Krikowa F, Ellwood M, Foster S, Jagtap R, Raber G. 2012. Overview of hyphenated techniques using an ICP-MS detector with an emphasis on extraction techniques 8 for measurement of metalloids by HPLC–ICPMS. Microchem J. 105:15–31.
  • Margui E, Sague M, Queralt I, Hidalgo M. 2013. Liquid phase microextraction strategies combined with total reflection X-ray spectrometry for the determination of low amounts of inorganic antimony species in waters. Anal Chim Acta. 786:8–15.
  • Matsuo H, Miyazaki Y, Takemura H, Matsuoka S, Sakashita H, Yoshimura K. 2004. 11B NMR study on the interaction of boric acid with azomethine H. Polyhedron. 23:955–961.
  • Mendil D, Bardak H, Tuzen M, Soylak M. 2013. Selective speciation of inorganic antimony on tetraethylenepentamine bonded silica gel column and its determination by graphite furnace atomic absorption spectrometry. Talanta. 107:162–166.
  • Merdivan E, Benibol Y, Seyhan S. 2009. Fluorimetric detection of boron by azomethine-H in micellar solution and sol-gel. Spectrochimica Acta A. 71:2045–2049.
  • Nielsen FH. 1992. Facts and fallacies about boron. Nutrition Today. 27:6–12.
  • Nielsen FH. 1993. Ultra-trace elements of possible importance for human health. An update. In: Prasad AS, editor. Essential and toxic trace elements in human health and disease: An update. New York: Wiley–Liss; p. 355–376.
  • Nielsen FH. 1997. Boron in human and animal nutrition. Plant and Soil. 193:199–208.
  • Oxspring DA, McClean S, O’Kane E, Smyth WF. 1995. Study of the chelation of boron with azomethine H by differential pulse polarography, liquid chromatography and capillary electrophoresis and its analytical applications. Anal Chim Acta. 317:295–301.
  • Ozaki S, Tatsumi M, Nakamura E. 2013. Photometric determination of boron with azomethine-h using simplified two-channel flow injection analysis. J Flow Injection Anal. 3:117–122.
  • Pavlovic MS, Savovic JJ, Marinkovic M. 2001. Some problems connected with boron the determination by atomic absorption spectroscopy and the sensitivity improvement. J Serbian Chem Soc. 66:535–542.
  • Power PP, Woods WG. 1997. The chemistry of boron and its speciation in plants. Plant and Soil. 193:1–13.
  • Ramirez-Ortega D, Ramirez-Silva MT, Alarcón-Angeles G, Rojas-Hernández A, Palomar-Pardavé M, Romero-Romo MA. 2009. Development a boron potentiometric determination methodology using a carbon paste electrode modified with a β-cyclodextrine- azomethine-H inclusion complex. ECS Trans. 20:13–19.
  • Sánchez-Martínez M, Pérez-Corona T, Cámara C, Yolanda M. 2013. Migration of antimony from PET containers into regulated EU food simulants. Food Chem. 14:816–822.
  • Serafimovska JM, Arpadjan S, Stafilov T. 2011. Speciation of dissolved inorganic antimony in natural waters using liquid phase semi-microextraction combined with electrothermal atomic absorption spectrometry. Microchem J. 99:46–50.
  • Shotyk W, Krachler M. 2007. Contamination of bottled waters with antimony leaching from polyethylene terephthalate (PET) increases upon storage. Environ Sci Technol. 41:1560–1563.
  • Simşek A, Korkmaz D, Velioǧlu YS, Ataman OY. 2003. Determination of boron in hazelnut (Corylus avellana L.) varieties by inductively coupled plasma optical emission spectrometry and spectrophotometry. Food Chem. 83:293–296.
  • Sungur S, Okur R. 2009. Using a-azomethine-H method determination of boron contents of various foods consumed in Hatay Region in Turkey. Food Chem. 115:711–714.
  • Uehara N, Yamaguchi K, Shimizu T. 2001. Determination of trace amounts of boron in steel by reversed-phase high-performance liquid chromatography with azomethine-H as a precolumn derivatizaion agent. Anal Sci. 17:1421–1424.
  • van Staden JK, Tsanwani MM. 2002. Determination of boron as boric acid in eye lotions using a sequential injection system. Talanta. 58:1103–1108.
  • [WHO] World Health Organization. 1998. Guidelines for drinking-water quality. Geneva: World Health Organization.
  • Yousefi SR, Shemirani F, Jamali MR. 2010. Determination of antimony (III) and total antimony in aqueous samples by electrothermal atomic absorption spectrometry after dispersive liquid–liquid microextraction (DLLME). Anal Lett. 43:2563–2571.
  • Zaijun L, Zhengwei C, Jian T. 2006. The determination of boron in food and seed by spectrophotometry using a new reagent 3,4-dihydroxyazomethine-H. Food Chem. 94:310–314.
  • Zarei AR, Nobakht S, Zarei MA. 2013. A new separation and preconcentration system based on dispersive liquid-liquid microextraction for spectrophotometric determination of trace amounts of boron in water samples. J Trace Anal Food Drugs. 1:1–13.
  • Zeng LM, Wang HY, Guo YL. 2010. Fast quantitative analysis of boric acid by gas chromatography-mass spectrometry coupled with a simple and selective derivatization reaction using triethanolamine. J Am Soc Mass Spectr. 21:482–485.
  • Zhang J, Zhang G, Zhao C, Quan X, Jia Q. 2012. On-line preconcentration/separation of inorganic arsenic and antimony by poly (aryl ether ketone) containing pendant carboxyl groups prior to microwave plasma atomic spectrometry determinations. Microchem J. 100:95–99.

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