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Bottom-up design of hydrogels through click-chemistry modification of magnetic nanoparticles
Author(s) -
Ilaria Meazzini,
Massimo Bonini,
Francesca Ridi,
Piero Baglioni
Publication year - 2019
Publication title -
advanced materials letters
Language(s) - English
Resource type - Journals
eISSN - 0976-397X
pISSN - 0976-3961
DOI - 10.5185/amlett.2018.2214
Subject(s) - click chemistry , moiety , self healing hydrogels , alkyne , nanoparticle , cycloaddition , materials science , azide , magnetic nanoparticles , covalent bond , polymer chemistry , molecule , polymerization , chemical engineering , chemistry , combinatorial chemistry , nanotechnology , organic chemistry , polymer , composite material , engineering , catalysis
The paper describes a modular approach based on click chemistry for the surface modification of magnetic oxide nanoparticles and their covalent inclusion within chemical hydrogels. As a proof of concept, we prepared cobalt ferrite nanoparticles and we modified their surfaces through the reaction with molecules bearing a carboxylic function and, alternatively, either an azide or an alkyne moiety. In the second step, the modified nanoparticles were reacted through a Huisgen 1, 3-dipolar cycloaddition with a molecule bearing an unsaturated function and either an alkyne or an azide moiety, respectively. Finally, the particles were successfully copolymerized with acrylamide and N, N'-methylenebisacrylamide to obtain a magnetically responsive hydrogel. This approach could be easily extended towards any type of inorganic oxide nanoparticles and their inclusion within any radically co-polymerized hydrogel. Copyright © VBRI Press.

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