Дисперсионная и магнитная твердофазная экстракция органических соединений. Обзор обзоров

Cover Page

Cite item

Full Text

Open Access Open Access
Restricted Access Access granted
Restricted Access Subscription Access

Abstract

Дисперсионная твердофазная экстракция (ДТФЭ) и магнитная твердофазная экстракция (МТФЭ) относятся к методам твердофазного сорбционного концентрирования. По сравнению с классической твердофазной экстракцией эти методы имеют ряд преимуществ, таких как снижение расхода сорбентов и растворителей, времени экстракции и стоимости анализа. О популярности метода среди аналитиков свидетельствует большое число обзоров, которые мы обобщили в настоящей публикации. Систематизирована информация о разных вариантах этих методов, различающихся способом осуществления процесса концентрирования, природой используемых сорбентов, сочетанием с методами последующего определения сконцентрированных веществ; приведены примеры использования ДТФЭ и МТФЭ для выделения органических соединений при анализе объектов окружающей среды, пищевых продуктов и биологических жидкостей.

Full Text

Restricted Access

About the authors

С. Г. Дмитриенко

Московский государственный университет имени М.В. Ломоносова

Email: nikatolm@mail.ru

химический факультет

Russian Federation, 119991, Москва, ГСП-1, Ленинские горы, 1, стр.

В. В. Апяри

Московский государственный университет имени М.В. Ломоносова

Email: nikatolm@mail.ru

химический факультет

Russian Federation, 119991, Москва, ГСП-1, Ленинские горы, 1, стр.

В. В. Толмачева

Московский государственный университет имени М.В. Ломоносова

Author for correspondence.
Email: nikatolm@mail.ru

химический факультет

Russian Federation, 119991, Москва, ГСП-1, Ленинские горы, 1, стр.

М. В. Горбунова

Московский государственный университет имени М.В. Ломоносова

Email: nikatolm@mail.ru

химический факультет

Russian Federation, 119991, Москва, ГСП-1, Ленинские горы, 1, стр.

А. А. Фурлетов

Московский государственный университет имени М.В. Ломоносова

Email: nikatolm@mail.ru

химический факультет

Russian Federation, 119991, Москва, ГСП-1, Ленинские горы, 1, стр.

References

  1. Pawliszyn J., Pedersen-Bjergaard S. Analytical microextraction: current status and future trends // J. Chromatogr. Sci. 2006. V. 44. P. 291.
  2. Carasek E., Morés L., Merib J. Basic principles, recent trends and future directions of microextraction techniques for the analysis of aqueous environmental samples // Trends Environ. Anal. Chem. 2018. V. 19. Article e00060.
  3. Jalili V., Barkhordari A., Ghiasvand A. Bioanalytical applications of microextraction techniques: A review of reviews // Chromatographia. 2020. V. 83. P. 567.
  4. Soares da Silva Burato J., Medina D.A.V., de Toffoli A.L., Maciel E.V.S., Lanças F.M. Recent advances and trends in miniaturized sample preparation techniques // J. Sep. Sci. 2020. V. 43. P. 202.
  5. Hansen F.A., Pedersen-Bjergaard S. Emerging extraction strategies in analytical chemistry // Anal. Chem. 2020. V. 92. P. 2.
  6. Pena-Pereira F., Bendicho C., Pavlović D.M., Martín-Esteban A., Díaz-Álvarez M., Pan Y., Cooper J., Yang Z., Safarik I., Pospiskova K., Segundo M.A., Psillakis E. Miniaturized analytical methods for determination of environmental contaminants of emerging concern – A review // Anal. Chim. Acta. 2021. V. 1158. Article 238108.
  7. Pedersen-Bjergaard S., Rasmussen K.E., Halvorsen T.G. Liquid–liquid extraction procedures for sample enrichment in capillary zone electrophoresis // J. Chromatogr. A. 2000. V. 902. P. 91.
  8. Luque de Castro M.D., Priego-Capote F. Ultrasound assistance to liquid–liquid extraction: A debatable analytical tool // Anal. Chim. Acta. 2007. V. 583. P. 2.
  9. Clement R.E., Hao C. Liquid–liquid extraction: Basic principles and automation / Comprehensive Sampling and Sample Preparation. 2012. V. 2. P. 51.
  10. Плетнев И.В., Смирнова С.В., Шведене Н.В. Новые направления применения ионных жидкостей в аналитической химии. 1. Жидкостная экстракция // Журн. аналит. химии. 2019. Т. 74. №7. С.483.
  11. Buszewski B., Szultka M. Past, present, and future of solid phase extraction: A review // Crit. Rev. Anal. Chem. 2012. V. 42. P. 198.
  12. Płotka-Wasylka J., Szczepańska N., de la Guardia M., Namieśnik J. Modern trends in solid phase extraction: New sorbent media // Trends Anal. Chem. 2016. V. 77. P. 23.
  13. Andrade-Eiroa A., Canle M., Leroy-Cancellieri V., Cerda V. Solid-phase extraction of organic compounds: A critical review. Part II // Trends Anal. Chem. 2016. V. 80. P. 655.
  14. Zhang C., Xing H., Yang L., Fei P., Liu H. Development trend and prospect of solid phase extraction technology // Chin. J. Chem. Eng. 2021. V. 42. P. 7600.
  15. Loh S.H., Yahaya N., Ishak S.M., Wan Mohd Khalik W.M.A., Che Abdullah N.S., Aboul-Enein H.Y., Ong M.C. Recent trends in adsorbent-based microextraction of micropollutants in environmental waters // Curr. Pollut. Rep. 2021. V.7. P. 89.
  16. Wang D., Chen X., Feng J., Sun M. Recent advances of ordered mesoporous silica materials for solid-phase extraction // J. Chromatogr. A. 2022. V. 1675. Article 463157.
  17. Campillo N., Gavazov K., Viñas P., Hagarova I., Andruch V. Liquid-phase microextraction: Update May 2016 to December 2018 // Appl. Spectrosc. Rev. 2019. V. 55. P. 307.
  18. Rutkowska M., Płotka-Wasylka J., Sajid M., Andruch V. Liquid–phase microextraction: A review of reviews // Microchem. J. 2019. V. 149. Article 103989.
  19. Yamini Y., Rezazadeh M., Seidi S. Liquid-phase microextraction – The different principles and configurations // Trends Anal. Chem. 2019. V. 112. P. 264.
  20. Jalili V., Barkhordari A., Ghiasvand A. New extraction media in microextraction techniques. A review of reviews // Microchem. J. 2020. V. 153. Article 104386.
  21. Kannouma R.E., Hammad M.A., Kamal A.H., Mansour F.R. Miniaturization of liquid-liquid extraction; the barriers and the enablers // Microchem. J. 2022. V. 182. Article 107863.
  22. Płotka-Wasylka J., Szczepańska N., de la Guardia M., Namieśnik J. Miniaturized solid-phase extraction techniques // Trends Anal. Chem. 2015. V. 73. P. 19.
  23. Dugheri S., Mucci N., Cappelli G., Trevisani L., Bonari A., Bucaletti E., Squillaci D., Arcangeli G. Advanced solid-phase microextraction techniques and related automation: A review of commercially available technologies // J. Anal. Methods Chem. 2022. Article 8690569.
  24. Федотов П.С., Малофеева Г.И., Савонина Е.Ю., Спиваков Б.Я. Твердофазная экстракция органических веществ: нетрадиционные методы и подходы // Журн. аналит. химии. 2019. Т. 74. С. 163.
  25. Płotka-Wasylka J., Jatkowska N., Paszkie M., M. Caban, Fares M.Y., Dogan A., Garrigues S., Manousi N., Kalogiouri N., Nowak P.M., de la Guardia S.M. Miniaturized solid phase extraction techniques for different kind of pollutants analysis: State of the art and future perspectives – PART 1 // Trends Anal. Chem. 2023. V. 162. Article 117034.
  26. Дмитриенко С.Г., Апяри В.В., Толмачева В.В., Горбунова М.В. Жидкостная экстракция органических соединений в каплю экстрагента. Обзор обзоров // Журн. аналит. химии. 2021. Т. 76. С. 675. (Dmitrienko S.G., Apyari V.V., Tolmacheva V.V., Gorbunova M.V. Liquid–liquid extraction of organic compounds into a single drop of the extractant: Overview of reviews // J. Anal. Chem. 2021. V. 76. № 8. P. 907.)
  27. Kailasa S.K., Koduru J.R., Park T.J., Singhal R.K., Wu H.-F. Applications of single-drop microextraction in analytical chemistry: A review // Trends Environ. Anal. Chem. 2021. V. 29. Article e00113.
  28. Esrafili A., Baharfar M., Tajik M., Yamini Y., Ghambarian M. Two-phase hollow fiber liquid-phase microextraction // Trends Anal. Chem. 2018. V. 108. P. 314.
  29. Gjelstad A. Three-phase hollow fiber liquid-phase microextraction and parallel artificial liquid membrane extraction // Trends Anal. Chem. 2019. V. 113. P. 25.
  30. Дмитриенко С.Г., Апяри В.В., Толмачева В.В., Горбунова М.В. Дисперсионная жидкостно-жидкостная микроэкстракция органических соединений. Обзор обзоров // Журн. аналит. химии. 2020. Т. 75. № 10. С. 867. (Dmitrienko S.G., Apyari V.V., Tolmacheva V.V., Gorbunova M.V. Dispersive liquid–liquid microextraction of organic compounds: An overview of reviews // J. Anal. Chem. 2020. V. 75. № 10. P. 1237.)
  31. Sajid M. Dispersive liquid-liquid microextraction: Evolution in design, application areas, and green aspects // Trends Anal. Chem. 2022. V. 152. Article 116636
  32. Дмитриенко С.Г., Апяри В.В., Горбунова М.В., Толмачева В.В., Золотов Ю.А. Гомогенная жидкостная микроэкстракция органических соединений // Журн. аналит. химии. 2020. Т. 75. С. 963. (Dmitrienko S.G., Apyari V.V., Gorbunova M.V., Tolmacheva V.V., Zolotov Yu A. Homogeneous liquid–liquid microextraction of organic compounds // J. Anal. Chem. 2020. V. 75. № 11. P. 1371.)
  33. Ramezani A.M., Ahmadi R., Yamini Y. Homogeneous liquid-liquid microextraction based on deep eutectic solvents // Trends Anal. Chem. 2022. V. 149. Article 116566.
  34. Bordin D.C.M., Alves M.N.R., de Campos E.G., de Martinis B.S. Disposable pipette tips extraction: Fundamentals, applications and state of the art: Sample preparation // J. Sep. Sci. 2016. V. 39. P. 1168.
  35. Turoňová D., Kujovská Krčmová L., Švec F. Application of microextraction in pipette tips in clinical and forensic toxicology // Trends Anal. Chem. 2021. V. 143. Article 116404.
  36. Carasek E., Mores L., Huelsmann R.D. Disposable pipette extraction: A critical review of concepts, applications, and directions // Anal. Chim. Acta. 2022. V. 1192. Article 339383.
  37. Reyes-Garces N., Gionfriddo E., Gomez-Rios G.A., Alam M.N., Boyaci E., Bojko B., Singh V., Grandy J., Pawliszyn J. Advances in solid phase microextraction and perspective on future directions // Anal. Chem. 2018. V. 90. P. 302.
  38. Jalili V., Barkhordari A., Ghiasvand A. A comprehensive look at solid-phase microextraction technique: A review of reviews // Microchem. J. 2020. V. 152. Article 104319.
  39. Nolvachai Y., Amaral M.S.S., Herron R., Philip J. Marriott. Solid phase microextraction for quantitative analysis – Expectations beyond design? // Green Anal. Chem. 2023. V. 4. Article 100048.
  40. David F., Ochiai N., Sandra P. Two decades of stir bar sorptive extraction: A retrospective and future outlook // Trends Anal. Chem. 2019. V. 112. P. 102.
  41. Hasan C.K., Ghiasvand A., Lewis T.W., Nesterenko P.N., Paull B. Recent advances in stir-bar sorptive extraction: Coatings, technical improvements, and applications // Anal. Chim. Acta. 2020. V. 1139. P. 222.
  42. Šafařı́ková M., Šafařı́k I. Magnetic solid-phase extraction // J. Magn. Magn. Mater. 1999. V. 194. P. 108.
  43. Anastassiades M., Lehotay S.J., Štajnbaher D., Schenck F.J. Fast and easy multiresidue method employing acetonitrile extraction/partitioning and “Dispersive solid-phase extraction” for the determination of pesticide residues in produce // J. AOAC Int. 2003. V. 86. P. 412.
  44. Yang L., Said R., Abdel-Rehim M. Sorbent, device, matrix and application in microextraction by packed sorbent (MEPS): A review // J. Chromatogr. B. 2017. V. 1043. P. 33.
  45. Pereira J.A.M., Gonçalves J., Porto-Figueira P., Figueira J.A., Alves V., Perestrelo R., Medina S., Câmara J.S. Current trends on microextraction by packed sorbent – Fundamentals, application fields, innovative improvements and future applications // Analyst. 2019. V. 144. P. 5048.
  46. Socas-Rodríguez B., Herrera-Herrera A.V., Asensio-Ramos M., Hernández-Borges J. Dispersive solid-phase extraction / Analytical Separation Science. Wiley-VCH Verlag GmbH & Co. KGaA, 2015. P. 1525.
  47. Khezeli T., Daneshfar A. Development of dispersive micro solid-phase extraction based on micro and nano sorbents // Trends Anal. Chem. 2017. V. 89. P. 99.
  48. Islas G., Ibarra I.S., Hernandez P., Miranda J.M., Cepeda A. Dispersive solid phase extraction for the analysis of veterinary drugs applied to food samples: A review // Int. J. Anal. Chem. 2017. Article 8215271.
  49. Rocío-Bautista P., González-Hernández P., Pino V., Pasán J., Afonso A.M. Metal-organic frameworks as novel sorbents in dispersive-based microextraction approaches // Trends Anal. Chem. 2017. V. 90. P. 114.
  50. Ghorbani M., Aghamohammadhassan M., Chamsaz M., Akhlaghi H., Pedramrad T. Dispersive solid phase microextraction // Trends Anal. Chem. 2019. V. 118. P. 793.
  51. Chisvert A., Cárdenas S., Lucena R. Dispersive micro-solid phase extraction // Trends Anal. Chem. 2019. V. 112. P. 226.
  52. Büyüktiryaki S., Keçili R., Hussain C.M. Functionalized nanomaterials in dispersive solid phase extraction: Advances & Prospects // Trends Anal. Chem. 2020. V. 127. Article 115893.
  53. Ghorbani M., Aghamohammadhassan M., Ghorbani H., Zabihi, A. Trends in sorbent development for dispersive micro-solid phase extraction // Microchem. J. 2020. V. 158. Article 105250.
  54. Ścigalski P., Kosobucki P. Recent materials developed for dispersive solid phase extraction // Molecules. 2020. V. 25. Article 4869.
  55. Sajid M., Nazal M.K., Ihsanullah I. Novel materials for dispersive (micro) solid-phase extraction of polycyclic aromatic hydrocarbons in environmental water samples: A review // Anal. Chim. Acta. 2021. V. 1141. P. 246.
  56. Jayasinghe G.D.T.M., Moreda-Piñeiro A. Molecularly imprinted polymers for dispersive (micro)solid phase extraction: A review // Separations. 2021. V. 8. P. 99.
  57. Mohamed A.H., Noorhishamac N.A., Bakar K., Yahaya N., Mohamad S., Kamaruzaman S., Osman H. Synthesis of imidazolium-based poly(ionic liquids) with diverse substituents and their applications in dispersive solid-phase extraction // Microchem. J. 2020. V. 178. Article 107363.
  58. Lin J.-H., Wu Z.-H., Tseng W.-L. Extraction of environmental pollutants using magnetic nanomaterials // Anal. Methods. 2010. V. 2. P. 1874.
  59. Chen L., Wang T., Tong J. Application of derivatized magnetic materials to the separation and the preconcentration of pollutants in water samples // Trends Anal. Chem. 2011. V. 30. P. 1095.
  60. Xie L., Jiang R., Zhu F., Liu H., Ouyang G. Application of functionalized magnetic nanoparticles in sample preparation // Anal. Bioanal. Chem. 2013. V. 406. P. 377.
  61. Huang D., Deng C., Zhang X. Functionalized magnetic nanomaterials as solid phase extraction adsorbents for organic pollutants in environmental analysis // Anal. Methods. 2014. V. 6. P. 7130.
  62. Егунова О.Р., Константинова Т.А., Штыков С.Н. Магнитные наночастицы магнетита в разделении и концентрировании // Изв. Сарат. ун-та. Нов. сер. Сер. Химия. Биология. Экология. 2014. Т. 14. № 4. С. 27.
  63. Wierucka M., Biziuk M. Application of magnetic nanoparticles for magnetic solid-phase extraction in preparing biological, environmental and food samples // Trends Anal. Chem. 2014. V. 59. P. 50.
  64. Kaur R., Hasan A., Iqbal N., Alam S., Saini M.K., Raza S.K. Synthesis and surface engineering of magnetic nanoparticles for environmental cleanup and pesticide residue analysis: A review // J. Sep. Sci. 2014. V. 37. P. 1805.
  65. Wan Ibrahim W.A., Nodeh H.R., Aboul-Enein H.Y., Sanagi M.M. Magnetic solid-phase extraction based on modified ferum oxides for enrichment, preconcentration, and isolation of pesticides and selected pollutants // Crit. Rev. Anal. Chem. 2015. V. 45. P. 270.
  66. Herrero-Latorre C., Barciela-Garcia J., Garcia-Martin S., Pena-Crecente R.M., Otarola-Jimenez J. Magnetic solid-phase extraction using carbon nanotubes as sorbents: A review // Anal. Chim. Acta. 2015. V. 892. P. 10.
  67. Толмачева В.В., Апяри В.В., Кочук Е.В., Дмитриенко С.Г. Магнитные сорбенты на основе наночастиц оксидов железа для выделения и концентрирования органических соединений // Журн. аналит химии. 2016. Т. 71. С. 339. (Tolmacheva V.V., Apyari V.V., Kochuk E.V., Dmitrienko S.G. Magnetic adsorbents based on iron oxide nanoparticles for the extraction and preconcentration of organic compounds // J. Anal. Chem. 2016. V. 71. P. 321.)
  68. Faraji M. Recent analytical applications of magnetic nanoparticles // Nanochem. Res. 2016. V. 1. P. 264.
  69. Speltini A., Sturini M., Maraschi F., Profumo A. Recent trends in the application of the newest carbonaceous materials for magnetic solid-phase extraction of environmental pollutants // Trends Environ. Anal. Chem. 2016. V. 10. P. 11.
  70. Vasconcelos I., Fernandes C. Magnetic solid phase extraction for determination of drugs in biological matrices // Trends Anal. Chem. 2017. V. 89. P. 41.
  71. Maya F., Cabello C.P., Frizzarin R.M., Estela J.M., Palomino G.T., Cerdà V. Magnetic solid-phase extraction using metal-organic frameworks (MOFs) and their derived carbons // Trends Anal. Chem. 2017. V. 90. P. 142.
  72. Ansari S., Karimi M. Recent configurations and progressive uses of magnetic molecularly imprinted polymers for drug analysis // Talanta. 2017. V. 167. P. 470.
  73. Ansari S. Application of magnetic molecularly imprinted polymer as a versatile and highly selective tool in food and environmental analysis: recent developments and trends // Trends Anal. Chem. 2017. V. 90. P. 89.
  74. Li N., Jiang H.L., Wang X.L., Wang X., Xu G.J., Zhang B.B., Wang L.J., Zhao R.S., Lin J.M. Recent advances in graphene-based magnetic composites for magnetic solid-phase extraction // Trends Anal. Chem. 2018. V. 102. P. 60.
  75. Jiang H.L., Li N., Cui L., Wang X., Zhao R.S. Recent application of magnetic solid phase extraction for food safety analysis // Trends Anal. Chem. 2019. V. 120. Article 115632.
  76. Li W., Shi Y. Recent advances and applications of carbon nanotubes based composites in magnetic solid-phase extraction // Trends Anal. Chem. 2019. V. 118. P. 652.
  77. Capriotti A.L., Cavaliere C., La Barbera G., Montone C.M., Piovesana S., Laganà A. Recent applications of magnetic solid-phase extraction for sample preparation // Chromatographia. 2019. V. 82. P. 1251.
  78. Yu M., Wang L., Hu L., Li Y., Luo D., Mei S. Recent applications of magnetic composites as extraction adsorbents for determination of environmental pollutants // Trends Anal. Chem. 2019. V. 119. Article 115611.
  79. Manousi N., Rosenberg E., Deliyanni E., Zachariadis G.A., Samanidou V. Magnetic solid-phase extraction of organic compounds based on graphene oxide nanocomposites // Molecules. 2020. V. 25. Article 1148.
  80. Di S., Ning T., Yu J., Chen P., Yu H., Wang J., Yang H., Zhu S. Recent advances and applications of magnetic nanomaterials in environmental sample analysis // Trends Anal. Chem. 2020. V. 126. Article 115864.
  81. Li W.K., Shi Y.P. Recent advances of magnetic extractants in food analysis // Trends Anal. Chem. 2020. V. 129. Article 115951.
  82. Socas-Rodriguez B., Herrera-Herrera A.V., Asensio-Ramos M., Rodriguez-Delgado M.A. Recent applications of magnetic nanoparticles in food analysis // Processes. 2020. V. 8. Article 1140.
  83. Wang Q., Gao T., Hao L., Guo Y., Liu W., Guo L., Wang C., Wang Z., Wu Q. Advances in magnetic porous organic frameworks for analysis and adsorption applications // Trends Anal. Chem. 2020. V. 132. Article 116048.
  84. Wu A., Zhao X., Wang J., Tang Z., Zhao T., Niu L., Yu W., Yang C., Fang M., Lv H., Liu S., Wu F., Application of solid-phase extraction based on magnetic nanoparticle adsorbents for the analysis of selected persistent organic pollutants in environmental water: A review of recent advances // Crit. Rev. Environ. Sci. Technol. 2020. V. 51. Р. 1.
  85. Faraji M., Shirani M., Rashidi-Nodeh H. The recent advances in magnetic sorbents and their applications // Trends Anal. Chem. 2021. V. 141. Article 116302.
  86. Musarurwa H., Chimuka L., Tavengwa N.T. Metal organic framework-based magnetic solid phase extraction of pesticides in complex matrices // Microchem. J. 2021. V. 171. Article 106907.
  87. Yin S.-J., Zhao J., Yang F.-Q. Recent applications of magnetic solid phase extraction in sample preparation for phytochemical analysis // J. Pharm. Biomed. Anal. 2021. V. 192. Article 113675.
  88. Soylak M., Ozalp O., Uzcan F. Magnetic nanomaterials for the removal, separation and preconcentration of organic and inorganic pollutants at trace levels and their practical applications: A review // Trends Environ. Anal. Chem. 2021. V. 29. Article e00109.
  89. Majd M., Yazdanpanah M., Bayatloo M.R., Nojavan S. Recent advances and applications of cyclodextrins in magnetic solid phase extraction // Talanta. 2021. V. 229. Article 122296.
  90. Моходоева О.Б., Максимова В.В., Дженлода Р.Х., Шкинев В.М. Модифицированные ионными жидкостями магнитные наночастицы в анализе объектов окружающей среды // Журн. аналит. химии. 2021. T. 76. С. 483. (Mokhodoeva O.B., Maksimova V.V., Dzhenloda R. Kh., Shkinev V.M. Magnetic nanoparticles modified by ionic liquids in environmental analysis // J. Anal. Chem. 2021. V. 76. № 6. P. 675.)
  91. Cui Y., Ding L., Ding J. Recent advances of magnetic molecularly imprinted materials: From materials design to complex sample pretreatment // Trends Anal. Chem. 2022. V. 147. Article 11651.
  92. Zhang S., Ange K.U., Ali N., Yang Y., Khan A., Ali F., Sajid M., Tian C.T., Bilal M. Analytical perspective and environmental remediation potentials of magnetic composite nanosorbents ― A review // Chemosphere. 2022. V. 304. Article 135312.
  93. Chen R., Qiao X., Liu F. Ionic liquid-based magnetic nanoparticles for magnetic dispersive solid-phase extraction: A review // Anal. Chim. Acta. 2022. V. 1201. Article 339632.
  94. Farooq S., Wu H., Nie J., Ahmad S., Muhammad I., Zeeshana M., Khan R., Asim M. Application, advancement and green aspects of magnetic molecularly imprinted polymers in pesticide residue detection // Sci. Total Environ. 2022. V. 804. Article 150293.
  95. Yu X., Zhong T., Zhang Y. Zhao X., Xiao Y., Wang L., Liu X., Zhang X. Design, preparation, and application of magnetic nanoparticles for food safety analysis: A review of recent advances // J. Agric. Food Chem. 2022. V. 70. Р. 46.
  96. Wang N., Zhou X., Cui B. Recent advances and applications of magnetic covalent organic frameworks in food analysis // J. Chromatogr. A. 2023. V. 1687. Article 463702.
  97. Золотов Ю.А., Цизин Г.И., Дмитриенко С.Г., Моросанова Е.И. Сорбционное концентрирование микрокомпонетов из растворов: применение в неорганическом анализе. М.: Наука, 2007. 320 с.
  98. Kim L., Lee D., Cho H.-K., Choi S.-D. Review of the QuEChERS method for the analysis of organic pollutants: Persistent organic pollutants, polycyclic aromatic hydrocarbons, and pharmaceuticals // Trends Environ. Anal. Chem. 2019. V. 22. Article e00063.
  99. Santana-Mayor Á., Socas-Rodríguez B., Herrera-Herrera A.V., Rodríguez-Delgado M.Á. Current trends in QuEChERS method. A versatile procedure for food, environmental and biological analysis // Trends Anal. Chem. 2019. V. 116. P. 214.
  100. Lehotay S.S. The QuEChERSER Mega-Method // LCGC North America. 2022. V. 40. P. 13.
  101. Albero B., Tadeo J.L., Pérez R.A. Ultrasound-assisted extraction of organic contaminants // Trends Anal. Chem. 2019. V. 118. P. 739.
  102. Lasarte-Aragonés G, Lucena R, Cárdenas S. Effervescence-assisted microextraction-one decade of developments // Molecules. 2020. V. 25. Article 6053.
  103. Rocío-Bautista P., Pacheco-Fernández I., Pasán J., Pino V. Are metal-organic frameworks able to provide a new generation of solid-phase microextraction coatings? – A review // Anal. Chim. Acta. 2016. V. 939. P. 26.
  104. Shi W., Li W., Nguyen W., Chen W., Wang J., Chen M. Advances of metal organic frameworks in analytical applications // Mater. Today Adv. 2022. V. 15. Article 100273.
  105. Fontanals N., Marcé R.M., Borrull F., Cormack P.A.G. Mixed-mode ion-exchange polymeric sorbents: Dual-phase materials that improve selectivity and capacity // Trends Anal. Chem. 2010. V. 29. P. 765.
  106. Цюрупа М.П., Блинникова З.К., Проскурина Н.А., Пастухов А.В., Павлова Л.А., Даванков В.А. Сверхсшитый полистирол – первый нанопористый полимерный материал // Российские нанотехнологии. 2009. Т. 4. С. 109.
  107. Дмитриенко С.Г., Тихомирова Т.И., Апяри В.В., Толмачева В.В., Кочук Е.В., Золотов Ю.А. Применение сверхсшитых полистиролов для концентрирования и разделения органических соединений и ионов элементов // Журн. аналит. химии. 2018. Т. 73. С. 830.(Dmitrienko S.G., Tikhomirova T.I., Apyari V.V., Tolmacheva V.V., Kochuk E.V., Zolotov Yu.A. Application of hypercrosslinked polystyrenes to the preconcentration and separation of organic compounds and ions of elements: A review. // J. Anal. Chem. 2018. V. 73. P. 1053.)
  108. Дмитриенко С.Г., Ирха В.В., Кузнецова А.Ю., Золотов Ю.А. Использование полимеров с молекулярными отпечатками в процессах разделения и концентрирования органических соединений // Журн. аналит. химии. 2004 Т. 59. С. 902. (Dmitrienko S.G., Irkha V.V., Kuznetsova A. Yu., Zolotov Yu. A. Use of molecular imprinted polymers for the separation and preconcentration of organic compounds // J. Anal. Chem. 2004. V. 59. № 9. P. 808.)
  109. V. Soares Maciel E., de Toffoli A.L., Lanças F.M. Recent trends in sorption based sample preparation and liquid chromatography techniques for food analysis // Electrophoresis. 2018. V. 39. P. 1582.
  110. Casado N., Morante-Zarcero S., Pérez-Quintanilla D., Câmara J.S., Sierra I. Two novel strategies in food sample preparation for the analysis of dietary polyphenols: Micro-extraction techniques and new silica-based sorbent materials // Trends Food Sci. Technol. 2018. V. 98. P. 167.
  111. Peng L., Cao J. Modern microextraction techniques for natural products // Electrophoresis. 2021. V. 42. P. 219.
  112. Nasiri M., Ahmadzadeh H., Amiri A. Sample preparation and extraction methods for pesticides in aquatic environments: A review // Trends Anal. Chem. 2020. V. 123. Article 11577210.
  113. Ali N.F.M., Sajid M., Halim W.I.A., Mohamed A.H., Zain N.N.M., Kamaruzaman S, Hanapi N.S.M., Ibrahim W.N.W., Yahaya N. Recent advances in solid phase extraction methods for the determination of bisphenol A and its analogues in environmental matrices: An updated review // Microchem. J. 2022. V. 184. Article 108158.
  114. González-Martín R., Lodoso-Ruiz E., Trujillo-Rodríguez M.J, Pino V. Magnetic ionic liquids in analytical microextraction: A tutorial review // J. Chromatogr. A. 2022. V. 1685. Article 463577.
  115. Aguirre M.A., Canals A. Magnetic deep eutectic solvents in microextraction techniques // Trends Anal. Chem. 2022. V. 146. Article 116500.
  116. Safari M., Yamini Y. Application of magnetic nanomaterials in magnetic in-tube solid-phase microextraction // Talanta. 2020. V. 221. Article 121648.
  117. Ali N., Hassan Riead M.M., Bilal M., Yang Y., Khan A., Ali, F., Iqbal H.M.N. Adsorptive remediation of environmental pollutants using magnetic hybrid materials as platform adsorbents // Chemosphere. 2021. V. 284. Article 131279.
  118. Zhao G., Qin N., Pan A., Wu X., Peng C., Ke F., Iqbal M., Ramachandraiah K., Zhu J. Magnetic nanoparticles@metal-organic framework composites as sustainable environment adsorbents // J. Nanomater. 2019. Article 1454358.
  119. Gao Y., Liu G., Gao M., Huang X., Xu D. Recent advances and applications of magnetic metal-organic frameworks in adsorption and enrichment removal of food and environmental pollutants // Crit. Rev. Anal. Chem. 2020. V. 50. P. 472.
  120. He M., Ou X., Wang Y., Chen Z., Li D., Chen B., Hu B. Porous organic frameworks-based (micro)extraction // J. Chromatogr. A. 2019. V. 1609. Article 460477.
  121. Zhang S., Yang Q., Wang C., Luo X., Kim J., Wang Z., Yamauchi Y. Porous organic frameworks: Advanced materials in analytical chemistry // Adv. Sci. 2018. V. 5. Article 1801116.
  122. Chen L., Wu Q., Gao J., Li H., Dong S., Shi X., Zhao L. Applications of covalent organic frameworks in analytical chemistry // Trends Anal. Chem. 2019. V. 113. P. 182.
  123. González-Sálamo J., Jiménez-Skrzypek G., Ortega-Zamora C., González-Curbelo M. Á., Hernández-Borges J. Covalent organic frameworks in sample preparation // Molecules. 2020. V. 25. Article 3288.
  124. Torabi E, Mirzaei M, Bazargan M, Amiri A. A critical review of covalent organic frameworks-based sorbents in extraction methods // Anal. Chim. Acta. 2022. V. 1224. Article 340207.
  125. Wang J., Feng J., Lian Y., Sun X., Wang M., Sun M. Advances of the functionalized covalent organic frameworks for sample preparation in food field // Food Chem. 2023. V. 405. Article 134818.
  126. Fakayode S.O., Lowry M., Fletcher K.A., Huang X., Powe A.M., Warner I.M. Cyclodextrins host-guest chemistry in analytical and environmental chemistry // Curr. Anal. Chem. 2007. V. 3. P. 171.
  127. Gentili A. Cyclodextrin-based sorbents for solid phase extraction // J. Chromatogr. A. 2020. V. 1609. Article 460654.
  128. Trujillo-Rodríguez M. J., Nan H., Varona M., Emaus M., Souza I.D., Anderson J.L. Advances of ionic liquids in analytical chemistry // Anal. Chem. 2019. V. 91. P. 505.
  129. Feng J., Loussala H.M., Han S., Ji X., Li C., Sun M. Recent advances of ionic liquids in sample preparation // Trends Anal. Chem. 2020. V. 125. Article 115833.
  130. Giakisikli G., Anthemidis A.N. Magnetic materials as sorbents for metal/metalloid preconcentration and/or separation. A review. // Anal. Chim. Acta. 2013. V. 789. P. 1.
  131. Hemmati M., Rajabi M., Asghari A. Magnetic nanoparticle based solid-phase extraction of heavy metal ions: A review on recent advances // Microchim. Acta. 2018. V. 185. P. 160.
  132. Sherlala A.I.A., Raman A.A.A., Bello M.M., Asghar A. A review of the applications of organo-functionalized magnetic graphene oxide nanocomposites for heavy metal adsorption // Chemosphere. 2018. V. 193. P. 1004.
  133. Filik H., Avan A.A. Magnetic nanostructures for preconcentration, speciation and determination of chromium ions: A review // Talanta. 2019. V. 203. P. 168.
  134. Kabeer M., Hakami Y., Asif M., Alrefaei T., Sajid M. Modern solutions in magnetic analytical extractions of metals: A review // Trends Anal. Chem. 2020. V. 130. Article 1159872.
  135. Ricardo A.I.C., Abujaber F., Bernardo F.J.G., Martín-Doimeadios R.C.R., Ríos A. Magnetic solid phase extraction as a valuable tool for elemental speciation analysis // Trends Environ. Anal. Chem. 2020. V. 27. Article e00097.
  136. Öztürk Er. E., Bozyiğit G.D., Büyükpınar Ç., Bakırdere S. Magnetic nanoparticles based solid phase extraction methods for the determination of trace elements // Crit. Rev. Anal. Chem. 2020. V. 52. Article 1797465.
  137. Ricardo A.I.C., Abujaber F., Bernardo F.J.G., Martín-Doimeadios R.C.R., Ríos A. Magnetic solid phase extraction as a valuable tool for elemental speciation analysis // Trends Environ. Anal. Chem. 2020. V. 27. Article e00097.
  138. Spietelun A., Marcinkowski Ł., de la Guardia M., Namieśnik J. Recent developments and future trends in solid phase microextraction techniques towards green analytical chemistry // J. Chromatogr. A. 2013. V. 1321. Р. 1.
  139. Pena-Pereira F., Lavilla I., Bendicho C. Greening sample preparation: An overview of cutting-edge contributions // Curr. Opin. Green Sustain. Chem. 2021. V. 30. Article 100481.
  140. Nowak P.M., Wietecha-Posłuszny R., Pawliszyn J. White Analytical Chemistry: An approach to reconcile the principles of Green Analytical Chemistry and functionality // Trends Anal. Chem. 2021. V. 138. Article 116223.
  141. Hussain C.M., Hussain C.G., Keçili R. White analytical chemistry approaches for analytical and bioanalytical techniques: Applications and challenges // Trends Anal. Chem. 2023. V. 159. Article 116905.
  142. Wang D., Chen X., Feng J., Sun M. Recent advances of ordered mesoporous silica materials for solid-phase extraction // J. Chromatogr. A. 2022. V. 1675. Article 463157.

Supplementary files

Supplementary Files
Action
1. JATS XML
2. Fig. 1. The scheme of dispersion solid-phase extraction [47].

Download (158KB)
3. Fig. 2. The scheme of magnetic solid-phase extraction [60].

Download (336KB)

Copyright (c) 2024 Russian Academy of Sciences

This website uses cookies

You consent to our cookies if you continue to use our website.

About Cookies