Synthesis of silica-polymer core-shell nanoparticles by reversible addition-fragmentation chain transfer polymerization

Hybrid nanoparticles hold great promise for a range of applications such as drug-delivery vectors or colloidal crystal self-assemblies. The challenge of preparing highly monodisperse particles for these applications has recently been overcome by using living radical polymerization techniques. In par...

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Veröffentlicht in:Chemical communications (Cambridge, England) Jg. 49; H. 80; S. 9077
Hauptverfasser: Moraes, John, Ohno, Kohji, Maschmeyer, Thomas, Perrier, Sébastien
Format: Journal Article
Sprache:Englisch
Veröffentlicht: England 01.01.2013
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ISSN:1364-548X, 1364-548X
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Abstract Hybrid nanoparticles hold great promise for a range of applications such as drug-delivery vectors or colloidal crystal self-assemblies. The challenge of preparing highly monodisperse particles for these applications has recently been overcome by using living radical polymerization techniques. In particular, the use of reversible addition-fragmentation chain transfer (RAFT), initiated from silica surfaces, yields well-defined particles from a range of precursor monomers resulting in nanoparticles of tailored sizes that are accessible via the rational selection of polymerization conditions. Furthermore, using RAFT allows post-polymerization modification to afford multifunctional, monodisperse, nanostructures under mild and non-stringent reaction conditions.
AbstractList Hybrid nanoparticles hold great promise for a range of applications such as drug-delivery vectors or colloidal crystal self-assemblies. The challenge of preparing highly monodisperse particles for these applications has recently been overcome by using living radical polymerization techniques. In particular, the use of reversible addition-fragmentation chain transfer (RAFT), initiated from silica surfaces, yields well-defined particles from a range of precursor monomers resulting in nanoparticles of tailored sizes that are accessible via the rational selection of polymerization conditions. Furthermore, using RAFT allows post-polymerization modification to afford multifunctional, monodisperse, nanostructures under mild and non-stringent reaction conditions.Hybrid nanoparticles hold great promise for a range of applications such as drug-delivery vectors or colloidal crystal self-assemblies. The challenge of preparing highly monodisperse particles for these applications has recently been overcome by using living radical polymerization techniques. In particular, the use of reversible addition-fragmentation chain transfer (RAFT), initiated from silica surfaces, yields well-defined particles from a range of precursor monomers resulting in nanoparticles of tailored sizes that are accessible via the rational selection of polymerization conditions. Furthermore, using RAFT allows post-polymerization modification to afford multifunctional, monodisperse, nanostructures under mild and non-stringent reaction conditions.
Hybrid nanoparticles hold great promise for a range of applications such as drug-delivery vectors or colloidal crystal self-assemblies. The challenge of preparing highly monodisperse particles for these applications has recently been overcome by using living radical polymerization techniques. In particular, the use of reversible addition-fragmentation chain transfer (RAFT), initiated from silica surfaces, yields well-defined particles from a range of precursor monomers resulting in nanoparticles of tailored sizes that are accessible via the rational selection of polymerization conditions. Furthermore, using RAFT allows post-polymerization modification to afford multifunctional, monodisperse, nanostructures under mild and non-stringent reaction conditions.
Author Ohno, Kohji
Perrier, Sébastien
Maschmeyer, Thomas
Moraes, John
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  surname: Moraes
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  email: sebastien.perrier@sydney.edu.au
  organization: Key Centre for Polymers & Colloids, School of Chemistry, The University of Sydney, NSW 2006, Australia. sebastien.perrier@sydney.edu.au
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  givenname: Kohji
  surname: Ohno
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  surname: Maschmeyer
  fullname: Maschmeyer, Thomas
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  givenname: Sébastien
  surname: Perrier
  fullname: Perrier, Sébastien
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Snippet Hybrid nanoparticles hold great promise for a range of applications such as drug-delivery vectors or colloidal crystal self-assemblies. The challenge of...
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StartPage 9077
SubjectTerms Colloids - chemistry
Drug Carriers - chemical synthesis
Drug Carriers - chemistry
Free Radicals - chemistry
Nanoparticles - chemistry
Polymerization
Polymers - chemistry
Silicon Dioxide - chemistry
Surface Properties
Title Synthesis of silica-polymer core-shell nanoparticles by reversible addition-fragmentation chain transfer polymerization
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