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Self-assembly of carbon nanotubes into two-dimensional geometries using DNA origami templates

  • Hareem T. Maune
  • , Si Ping Han
  • , Robert D. Barish
  • , Marc Bockrath
  • , William A.Goddard Iii
  • , Paul W.K. Rothemund
  • , Erik Winfree
  • California Institute of Technology

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

571 Citations (Scopus)

Résumé

A central challenge in nanotechnology is the parallel fabrication of complex geometries for nanodevices. Here we report a general method for arranging single-walled carbon nanotubes in two dimensions using DNA origamia technique in which a long single strand of DNA is folded into a predetermined shape. We synthesize rectangular origami templates (∼75nm×95nm) that display two lines of single-stranded DNA hooks in a cross pattern with ∼6nm resolution. The perpendicular lines of hooks serve as sequence-specific binding sites for two types of nanotubes, each functionalized non-covalently with a distinct DNA linker molecule. The hook-binding domain of each linker is protected to ensure efficient hybridization. When origami templates and DNA-functionalized nanotubes are mixed, strand displacement-mediated deprotection and binding aligns the nanotubes into cross-junctions. Of several cross-junctions synthesized by this method, one demonstrated stable field-effect transistor-like behaviour. In such organizations of electronic components, DNA origami serves as a programmable nanobreadboard; thus, DNA origami may allow the rapid prototyping of complex nanotube-based structures.

langue originaleAnglais
Pages (de - à)61-66
Nombre de pages6
journalNature Nanotechnology
Volume5
Numéro de publication1
Les DOIs
étatPublié - 1 janv. 2010
Modification externeOui

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