4.6 Article

Magnetic response of CoFe2O4 nanoparticles confined in a PNIPAM microgel network

期刊

SOFT MATTER
卷 18, 期 5, 页码 1089-1099

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1sm01597d

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资金

  1. German Research Foundation (DFG) [WE 2623/7-3, FI 1235/2-1, FI 1235/2-2, KL1165/18-1, CRC/TRR 247, 388390466]

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This paper investigates the coupling of magnetic nanoparticles with temperature-sensitive microgels and their response to magnetic fields. The study finds that the shrinkage of microgels significantly changes the magnetic properties, and modifying the microgels can affect their swelling ability and magnetic response. These findings are important for designing multi responsive systems with tunable particle matrix coupling strength.
The paper addresses coupling of magnetic nanoparticles (MNPs) with the polymer matrix of temperature-sensitive microgels and their response to magnetic fields. Therefore, CoFe2O4@CA (CA = citric acid) NPs are embedded within N-isopropylacrylamid (NIPAM) based microgels. The volume phase transition (VPT) of the magnetic microgels and the respective pure microgels is studied by dynamic light scattering and electrophoretic mobility measurements. The interaction between MNPs and microgel network is studied via magnetometry and AC-susceptometry using a superconducting quantum interference device (SQUID). The data show a significant change of the magnetic properties by crossing the VPT temperature (VPTT). The change is related to the increased confinement of the MNP due to the shrinking of the microgels. Modifying the microgel with hydrophobic allyl mercaptan (AM) affects the swelling ability and the magnetic response, i.e. the coupling of MNPs with the polymer matrix. Modeling the AC-susceptibility data results in an effective size distribution. This distribution represents the varying degree of constraint in MNP rotation and motion by the microgel network. These findings help to understand the interaction between MNPs and the microgel matrix to design multi responsive systems with tunable particle matrix coupling strength for future applications.

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