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Building superlattices from individual nanoparticles via template-confined DNA-mediated assembly.

Qing-Yuan LinJarad A MasonZhongyang LiWenjie ZhouMatthew N O'Brien LaramyKeith A BrownMatthew R JonesSerkan ButunByeongdu LeeVinayak P DravidKoray AydinChad Alexander Mirkin
Published in: Science (New York, N.Y.) (2018)
DNA programmable assembly has been combined with top-down lithography to construct superlattices of discrete, reconfigurable nanoparticle architectures on a gold surface over large areas. Specifically, the assembly of individual colloidal plasmonic nanoparticles with different shapes and sizes is controlled by oligonucleotides containing "locked" nucleic acids and confined environments provided by polymer pores to yield oriented architectures that feature tunable arrangements and independently controllable distances at both nanometer- and micrometer-length scales. These structures, which would be difficult to construct by other common assembly methods, provide a platform to systematically study and control light-matter interactions in nanoparticle-based optical materials. The generality and potential of this approach are explored by identifying a broadband absorber with a solvent polarity response that allows dynamic tuning of visible light absorption.
Keyphrases
  • visible light
  • single molecule
  • circulating tumor
  • cell free
  • nucleic acid
  • machine learning
  • high speed
  • deep learning
  • climate change
  • risk assessment
  • mass spectrometry
  • human health
  • liquid chromatography
  • solar cells