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Self-assembly of nanoparticles at interfaces

Soft Matter · 2007 · Vol. 3(10) · pp. 1231–1231
Alexander BökerJinbo HeTodd EmrickThomas P. Russell

Abstract

Developments in the assembly of nanoparticles at liquid-liquid interfaces are reviewed where the assemblies can be controlled by tuning the size of the nanoparticles and the chemical characteristics of the ligands. Both synthetic and biological nanoparticles are discussed. By controlling the type of ligands, uniform and Janus-type nanoparticles can be produced where, at liquid-liquid interfaces, subsequent reactions of the ligands can be used to generate crosslinked sheets of nanoparticles at the interface that have applications including novel encapsulants, filtration devices with well-defined porosities, and controlled release materials. By controlling the size and volume fraction of the nanoparticles and the chemical nature of the ligands, nanoparticle-polymer composites can be generated where either enthalpy or entropy can be used to control the spatial distribution of the nanoparticles, thereby, producing auto-responsive materials that self-heal, self-corral assemblies of nanoparticles, or self-direct morphologies. Such systems hold great promise for generating novel optical, acoustic, electronic and magnetic materials.

Pickering emulsions and particle stabilizationSurfactants and Colloidal SystemsGold and Silver Nanoparticles Synthesis and ApplicationsNanoparticleMaterials scienceNanotechnologyPolymerJanus particlesSelf-assemblyJanusChemical engineeringComposite material

Funding

  • National Science Foundation
  • U.S. Department of Energy
  • Volkswagen Foundation
  • University of Massachusetts Amherst
  • Materials Research Science and Engineering Center, Harvard University
  • Multidisciplinary University Research Initiative
  • Division of Materials Research
  • Division of Chemistry
  • Basic Energy Sciences
  • Army Research Laboratory
Citations
562
FWCI
14.06
field-weighted impact
References
161
Percentile
99%
vs. same field & year
Citations per year
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