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Shape-Dependent Oriented Trapping and Scaffolding of Plasmonic Nanoparticles by Topological Defects for Self-Assembly of Colloidal Dimers in Liquid Crystals

  • Bohdan Senyuk
  • , Julian S. Evans
  • , Paul J. Ackerman
  • , Taewoo Lee
  • , Pramit Manna
  • , Leonid Vigderman
  • , Eugene R. Zubarev
  • , Jao Van De Lagemaat
  • , Ivan I. Smalyukh
  • University of Colorado Boulder
  • National Renewable Energy Laboratory
  • Rice University

Research output: Contribution to journalArticlepeer-review

130 Scopus Citations

Abstract

We demonstrate scaffolding of plasmonic nanoparticles by topological defects induced by colloidal microspheres to match their surface boundary conditions with a uniform far-field alignment in a liquid crystal host. Displacing energetically costly liquid crystal regions of reduced order, anisotropic nanoparticles with concave or convex shapes not only stably localize in defects but also self-orient with respect to the microsphere surface. Using laser tweezers, we manipulate the ensuing nanoparticle-microsphere colloidal dimers, probing the strength of elastic binding and demonstrating self-assembly of hierarchical colloidal superstructures such as chains and arrays.

Original languageAmerican English
Pages (from-to)955-963
Number of pages9
JournalNano Letters
Volume12
Issue number2
DOIs
StatePublished - 8 Feb 2012

NLR Publication Number

  • NREL/JA-5900-53888

Keywords

  • colloids
  • liquid crystal elasticity
  • nanoscale self-assembly
  • optical trapping
  • Plasmonic nanoparticles
  • topological defects

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