Development of the method for quantitative determination of the composition of Ag@Fe3O4 magnetic nanocomposite

Authors

  • T. M Chan National University of Pharmacy, Ukraine
  • Ye. Ya Levitin National University of Pharmacy, Ukraine
  • O. S Kryskiv National University of Pharmacy, Ukraine

DOI:

https://doi.org/10.24959/ophcj.16.880

Keywords:

nanoparticles, composite magnet systems, quantitative determination

Abstract

The method for quantitative determination of the components of the Ag@Fe3O4 nanocomposite has been developed; it allows simultaneously determining silver and iron in one sample without the stage of taking the aliquot for individual determinations of these components. The method proposed comprises: the use of a considerably smaller quantity of the substance in the test sample; elimination of the need to prepare and standardize the solution of the indicator for silver determination; reduces the labour intensity of the process by saving time and expensive reagents; eliminates the stage of separation of the mixture components, etc. The basis of the method proposed is two conjugated detection procedures –Ag determination by Volhard’s method and Fe (III) determination in magnetite by the method of iodometry. It has been shown that this method allows determining silver without adding the indicator since the second component is magnetite containing bivalent and trivalent iron. The experiment is performed by the action of nitric acid on the sample of Ag@Fe3O4 powder. The acid, in its turn, helps silver to pass into solution and to oxidize Fe2+ ions to Fe3+ being an indicator in this determination. With the simultaneous presence of silver and iron in one sample at Ÿrst silver is quantiŸed, a pale pink colour of the solution above the precipitate appears only after all the silver has been titrated, that means the completeness of its precipitation. The experiment is completed with determination of Fe (III) by iodometry. To assess the validity of determinations the results have been conŸrmed by instrumental methods that are consistent with the results of the titrimetric method developed for quantitative determination of components in magnetically controlled nanocomposites. The relative error of the titrimetric determination does not exceed 0.1-0.2%.

Downloads

Download data is not yet available.

References

  1. Nikiforov V.N., Filinova E.Y. - Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim, Germany, 2009, Vol. 10, рр. 393 – 455.
  2. Berry C., Curtis A. - J. Phys. D. Appl. Phys, 2003, Vol. 36, №13, рр. 198 – 206.
  3. Lu A.-H., Salabas E.L., Schuth F. Angew. Chem. Int. Ed., 2007, Vol. 46, рр. 1222 – 1244.
  4. Gorbik Р.Р., Petranovskaya A.L., Turelik M.P., Pilipchuk E.V. Himiya, phizika i tekhnolohiya poverhnosti - Chemistry, physics and surface technology, 2006, Vol. 11, 12, pp. 374 – 396.
  5. Mahdavi M., Ahmad M.B., Haron M.J., Namvar F. Molecules, 2013, Vol. 18, pp. 7533 – 7548.
  6. Sondi I., Salopek-Sondi B. Journal of Colloid and Interface Science, 2004, Vol. 275, pp. 177 – 182.
  7. Nagarajan S., Yong Z. Use of C. Recent Patentson Biomedical Engineering, 2008, Vol. 1, №1, pp. 34 – 42.
  8. Pat. No. 95222 Ukrayina MPK (2014.01) C01G5/00, C01G49/00. Sposib oderzhannya magnitnoho nanokompozitu Ag@Fe3O4 z ostrivkovim pokrittyam / T.M. Chan, Ye.Ya. Levitin, O.S. Kryskiv (Ukrainе); Natsionalniy farmatsevtichniy universitet – № u 2014 07878; zayavl. 14.07.2014; opubl. 10.12.2014, Byul. № 23. – 5 s.
  9. Moskalenko V.F., Chekman I.S., Chernih V.P. Klinichna farmatsiya – Clinical Pharmacy, 2010, Vol. 14, № 11, pp. 6 – 12.
  10. Fadeeva V.I., Shehovtsova T.N., Ivanov V.M. Praktichne rukovodstvo. Uchebnoe posobie dlya vuzov (Practical guide. Textbook for high schools); pod red. Zolotova Yu.A. Moskow, 2001, 463 p.
  11. Amendola V., Bakr O.M., Stellacci F. A. Plasmonics, 2010, Vol. 5, pp. 85 – 97.
  12. Seyda B., BanuYa., Ali Demir S. INTECH Open Access Publisher, 2012, Vol. 2(3), №. 7, pp. 165 – 200.
  13. Karimi M.A., Mohammadi S.Z., Mohadesi A. Scientia Iranica, 2011,Vol. 18(3), pp. 790 – 796.
  14. Derzhavna Farmakopeya Ukrainy – 1-e vid. Derzhavne pidpriemstvo “Naukovo-ekspertniy farmakopeyniy tsentr” (State Pharmacopoeia of Ukraine - first edition State Enterprise "Scientific and Expert Pharmacopoeia Center”), Kharkiv: RIREG, 2001, pp. 438 – 439; Supp. 1, 2004. 520 p.
  15. Vidra F., Shtulik K., Yulakova E. Inversionnaya voltamperometriya (Stripping voltammetry). Perevod s cheshskogo k. him. n. V.A. Nemova pod red. d. him. n. B.Ya. Kaplana. Moskow, 1980, 278p.
  16. Pyatnitskiy I.V., Suhan V.V. Analiticheskaya himiya serebra (Analytical chemistry of silver), Moscow, 1975, 264 p.
  17. Gurieva R.F., Savin S.B. Zhurnal analiticheskoy himii (Journal of Analytical Chemistry), 2000, Vol. 55, №3, pp. 280 – 285.
  18. Korostylev P.P. Titrimetricheskiy i gravimetricheskiy analiz v metalurhii (Titrimetric and gravimetric analysis in metallurgy), Moscow, 1985, 320 p.
  19. Chan T. M., Levitin Ye. Ya, Kryskiv O. S., Vedernikova I. A. Journal of Chemical and Pharmaceutical Research, 2015, 7(5), pp.816 – 819.
  20. Lurie Yu.Yu. Spravochnik po analiticheskoy himii (Handbook of Analytical Chemistry) Moscow, 1989, pp. 92 – 101.
  21. Levitin Ye., Chan T., Kryskiv O., Skoryk M. Scripta Scientifica Pharmaceutica, 2015, Vol. 1, pp. 39 – 45.

Downloads

Published

2016-03-04

How to Cite

(1)
Chan, T. M.; Levitin, Y. Y.; Kryskiv, O. S. Development of the Method for Quantitative Determination of the Composition of Ag@Fe3O4 Magnetic Nanocomposite. J. Org. Pharm. Chem. 2016, 14, 30-35.

Issue

Section

Original Researches