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  Synthesis of Fluorous Ferrofluids and Effects of the Nanoparticle Coatings on Field- and Temperature-Dependent Magnetizations.

Lin, F.-C., Wouw, H. L. v. d., Campàs, O., Sletten, E. M., & Zink, J. I. (2023). Synthesis of Fluorous Ferrofluids and Effects of the Nanoparticle Coatings on Field- and Temperature-Dependent Magnetizations. Chemistry of materials: a publication of the American Chemical Society, 35(19), 7957-7966. doi:10.1021/acs.chemmater.3c01172.

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Lin, Fang-Chu, Author
Wouw, Heidi L van de, Author
Campàs, Otger1, Author           
Sletten, Ellen M, Author
Zink, Jeffrey I, Author
Affiliations:
1Max Planck Institute for Molecular Cell Biology and Genetics, Max Planck Society, ou_2340692              

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 Abstract: Ferrofluids have been extensively employed in industrial, environmental, and biomedical areas. Among them, fluorous ferrofluids are of particular interest because of the biorthogonal nature of perfluorocarbons (PFCs). However, the noninteracting nature of PFCs as well as challenges in functionalization of nanoparticle surfaces with fluorous ligands has limited their applications, especially in biomedicine. In particular, commercially available fluorous ferrofluids are stabilized using ionic surfactants with charged groups that physically interact with a wide range of charged biological molecules. In this paper, we developed a unique two-phase ligand attachment strategy to render stable fluorous ferrofluids using nonionic surfactants. The superparamagnetic Fe3O4 or MnFe2O4 core of the magnetic nanoparticles, the magnetic component of the ferrofluid, was coated with a silica shell containing abundant surface hydroxyl groups, thereby enabling the installation of fluorous ligands through stable covalent, neutral, siloxane bonds. We explored chemistry-material relationships between different ligands and PFC solvents and found that low-molecular-weight ligands can assist with the installation of high-molecular-weight ligands (4000-8000 g/mol), allowing us to systematically control the size and thickness of ligand functionalization on the nanoparticle surface. By zero-field-cooled magnetization measurements, we studied how the ligands affect magnetic dipole orientation forces and observed a curve flattening that is only associated with the ferrofluids. This work provided insight into ferrofluids' dependence on interparticle interactions and contributed a methodology to synthesize fluorous ferrofluids with nonionic surfactants that exhibit both magnetic and chemical stability. We believe that the doped MnFe2O4 fluorous ferrofluid has the highest combination of stability and magnetization reported to date.

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 Dates: 2023-10-10
 Publication Status: Issued
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 Identifiers: DOI: 10.1021/acs.chemmater.3c01172
Other: cbg-8651
PMID: 37840777
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Title: Chemistry of materials : a publication of the American Chemical Society
  Other : Chem Mater
Source Genre: Journal
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Pages: - Volume / Issue: 35 (19) Sequence Number: - Start / End Page: 7957 - 7966 Identifier: -