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Nanomateriały opracowane na potrzeby dyspersyjnej ekstrakcji do fazy stałej. Cz. 1, Modyfikacje materiałów klasycznych

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Warianty tytułu
EN
Nanomaterials developed for dispersive solid phase extraction. Part 1, Modifications of classical materials
Języki publikacji
PL
Abstrakty
EN
Solid phase extraction (SPE) is an analytical procedure developed with the purpose of separating a target analyte from a complex sample matrix prior to quantitative or qualitative determination. The purpose of such treatment is twofold: elimination of matrix constituents that could interfere with the detection process or even damage analytical equipment as well as enriching the analyte in the sample so that it is readily available for detection. Dispersive solid phase extraction (dSPE) is a relatively recent development of the standard SPE technique that is attracting growing attention due to its remarkable simplicity, short extraction time and low requirement for solvent expenditure, accompanied by high effectiveness and wide applicability. There is an enormous abundance of articles concerning advances in sample preparation and analysis published every year. The aim of this review is to bring to closer attention developments of materials with potential application as sorbents in dSPE technique through a thorough survey of recently conducted analytical studies focusing on methods utilizing novel, interesting nanomaterials in dSPE procedures and evaluation of their performance and suitability based on comparison of provided validation parameters with previously reported analytical procedures. The first part of this review focuses on widely known and utilized materials such as silica and carbon and their modifications, up to and including graphene and carbon nanotubes. Studies chosen for this review will be listed in tables alongside their relevant validation parameters at the end of each chapter. Applications found to be particularly interesting due to high effectiveness, unusual operating procedure or scope, among other reasons, will be described in greater detail.
Rocznik
Strony
27--42
Opis fizyczny
Bibliogr. 39 poz., rys., tab.
Twórcy
  • Wydział Technologii i Inżynierii Chemicznej, Politechnika Bydgoska im. J. J. Śniadeckich
  • Wydział Technologii i Inżynierii Chemicznej, Politechnika Bydgoska im. J. J. Śniadeckich
Bibliografia
  • [1] R.E. Majors, Sample Preparation Fundamentals for Chromatography, Agilent Technologies, Mississauga, ON, Canada, 2013.
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  • [17] N. Casado, S. Morante-Zarcero, D. Pérez-Quintanilla, J.S. Câmara, I. Sierra, J. Agric. Food Chem. 2019, 67, 955.
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  • [20] R. Mateos, S. Vera-López, M. Saz, A.M. Díez-Pascual, M.P. San Andrés, J. Chromatogr. A 2019, 1596, 30.
  • [21] B. Ebrahimi, S. Mohammadiazar, S. Ardalan, Microchem. J. 2019, 147, 666.
  • [22] X. Zhang, J. Niu, X. Zhang, R. Xiao, M. Lu, Z. Cai, J. Chromatogr. B 2017, 1046, 58.
  • [23] G. Ma, M. Zhang, L. Zhu, H. Chen, X. Liu, C. Lu, J. Chromatogr. A 2018, 1531, 22.
  • [24] F.L. Lu, J.N. Liu, L.L. Shi, G.S. Chen, Chin. J. Anal. Chem. 2012, 39, 39.
  • [25] Y.G. Zhao, X.P. Li, S.S. Yao, P.P. Zhan, J.C. Liu, C.P. Xu, Y.Y. Lu, X.H. Chen, M.C. Jin, J. Chromatogr. A 2016, 1431, 36.
  • [26] X.H. Chen, Y.G. Zhao, Q.L. Qiu, Y. Zhu, J.Q. Min, M.C. Jin, Anal. Methods 2017, 9, 4228.
  • [27] M.M. El-Wekil, H.R.H. Ali, A.A. Marzouk, R. Ali, RSC Adv. 2018, 8, 13292.
  • [28] J. Zhang, W. Li, W. Zhu, Y. Yang, P. Qin, Q. Zhu, M. Lu, Z. Cai, Microchim. Acta 2019, 186, 279.
  • [29] J. Wang, J. Zhu, L. Si, Q. Du, H. Li, W. Bi, D.D.Y. Chen, Anal. Chim. Acta 2017, 996, 20.
  • [30] M. Paszkiewicz, M. Sikorska, D. Leszczyńska, P. Stepnowski, Water Air Soil Pollut. 2018, 229, 253.
  • [31] A. Jakubus, K. Godlewska, M. Gromelski, K. Jagiello, T. Puzyn, P. Stepnowski, M. Paszkiewicz, Microchem. J. 2019, 146, 1113.
  • [32] A. Jakubus, M. Gromelski, K. Jagiello, T. Puzyn, P. Stepnowski, M. Paszkiewicz, Microchem. J. 2019, 146, 258.
  • [33] M. Wang, S. Zhang, X. Zhang, D. Li, IOP Conf. Ser. Mater. Sci. Eng. 2017, 207, 012003.
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  • [35] S.M. Yousefi, F. Shemirani, S.A. Ghorbanian, Talanta 2017, 168, 73.
  • [36] S. Singh, A. Srivastava, S.P. Singh, Anal. Bioanal. Chem. 2018, 410, 2241
  • [37] R. Mateos, S. Vera-López, A.M. Díez-Pascual, M.P. San Andrés, Appl. Clay Sci. 2018, 163, 279.
  • [38] Y.G. Zhao, Y. Zhang, F.L. Wang, J. Zhou, Q.M. Zhao, X.Q. Zeng, M.Q. Hu, M.C. Jin, Y. Zhu, Talanta 2018, 185, 411.
  • [39] Q. Zeng, Y.M. Liu, Y.W. Jia, L.H. Wan, X. Liao, Mat. Sci. Eng. C 2017, 71, 186
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-fa6a8a3c-bf3c-4767-a407-d615a0b1b463
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