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Zastosowania materiałów opartych na polimerach z odciskiem molekularnym i ich wpływ na rozwój chemii supramolekularnej

Treść / Zawartość
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Warianty tytułu
EN
The application of molecularly imprinted polymer-based materials and their influence on the development of supramolecular chemistry
Języki publikacji
PL
Abstrakty
EN
Molecularly Imprinted Polymers (MIPs) are the group of polymers that possess an ability to selective recognize analytes or groups of analytes, which are similar by their structural construction. The recognizing ability, which is generated during the synthesis of material, is determined by various factors such as shape, size, and the presence of functional groups in the MIP cavity. This molecular recess is created as a result of removing the specific analyte from the inclusive complex (polymeranalyte). Thanks to the valuable properties of molecularly imprinted polymers, these materials are commonly used in various fields. The multitude of their applications results from their properties such as high physical stability to harsh chemical and physical conditions, straightforward preparation, remarkable robustness, excellent reusability, and relative low-cost synthesis. Due to the attractiveness of MIPs widely demonstrated in the literature, as well as the possibilities of their application in various fields, these materials also have gained the favor of Professor Grzegorz Schroeder’s research group, in which numerous scientific works devoted to the subject of their use have been published.
Rocznik
Strony
491--507
Opis fizyczny
Bibliogr. 48 poz., rys., wykr.
Twórcy
  • Studentka Wydziału Chemii, Uniwersytet im. Adama Mickiewicza w Poznaniu
  • Wydział Chemii, Uniwersytet im. Adama Mickiewicza w Poznaniu
Bibliografia
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  • [16] M. Cegłowski, J. Kurczewska, P. Ruszkowski, G. Schroeder, European Polymer Journal, 2019, 118, 328.
  • [17] M. Cegłowski, V.V. Jerca, F.A. Jerca, R. Hoogenboom, Pharmaceutics, 2020, 12, 506.
  • [18] J. Kurczewska, M. Cegłowski, P. Pecyna, M. Ratajczak, M. Gajęcka, G. Schroeder, Materials Letters, 2017, 201, 46.
  • [19] M. Guć, B. Messyasz, G. Schroeder, Science of the Total Environment, 2021, 772, 145074.
  • [20] M. Cegłowski et al., Chemistry of Materials, 2022, 34, 84.
  • [21] M. Guć, S. Rutecka, G. Schroeder, Biomolecules, 2020, 10, 1.
  • [22] M. Pawlaczyk, G. Schroeder, ACS Applied Polymer Materials, 2021, 3, 956.
  • [23] M. Cegłowski, M. Smoluch, E. Reszke, J. Silberring, G. Schroeder, Analytical and Bioanalytical Chemistry, 2017, 409, 3393.
  • [24] M. Cegłowski, J. Kurczewska, P. Ruszkowski, J. Liberska, G. Schroeder, Colloids and Surfaces B: Biointerfaces, 2019, 182, 110379.
  • [25] M. Pawlaczyk, M. Guć, G. Schroeder, RSC Advances, 2021, 11, 25334.
  • [26] S.S. Lin et al., J. Trauma Infect. Crit. Care, 1999 47, 136.
  • [27] J. Kurczewska, P. Sawicka, M. Ratajczak, M. Gajęcka, and G. Schroeder, International Journal of Pharmaceutics, 2015, 496, 526.
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  • [33] B. Verbraeken, B.D. Monnery, K. Lava, R. Hoogenboom, European Polymer Journal, 2017, 88, 451.
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  • [35] M. Glassner, M. Vergaelen, R. Hoogenboom, Polymer International, 2018, 67,32.
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  • [41] J.F.R. van Guyse, X. Xu, R. Hoogenboom, Journal of Polymer Science, Part A: Polymer Chemistry, 2019, 57, 2616.
  • [42] B.D. Monnery, R. Hoogenboom, Polymer Chemistry, 2019, 10, 3480.
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  • [44] E. Polo et al., Bioorganic Chemistry, 2019, 90, 103034.
  • [45] D. Elkhalifa, I. Al-Hashimi, A.E. al Moustafa, A. Khalil, Journal of Drug Targeting, 2021, 29, 403.
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Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-79d6da2a-57e4-46d8-98ba-5437962c0caa
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