4.8 Article

Programming Self-Assembly of DNA Origami Honeycomb Two-Dimensional Lattices and Plasmonic Metamaterials

期刊

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
卷 138, 期 24, 页码 7733-7740

出版社

AMER CHEMICAL SOC
DOI: 10.1021/jacs.6b03966

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资金

  1. Wallace H. Coulter Department of Biomedical Engineering Faculty Startup Grant
  2. Winship Cancer Institute Billi and Bernie Marcus Research Award
  3. Wyss Institute Faculty Grant
  4. ONR [N000014091118, N000141010241, N000141410609]
  5. NSF DMREF [1435964]
  6. NIH [1DP2OD004641]
  7. NSF CMMI [1334109]
  8. Basic Science Research Program (the National Research Foundation of Korea) [2009-0083540, NRF-2014R1A1A2057763]
  9. Directorate For Engineering
  10. Div Of Civil, Mechanical, & Manufact Inn [1334109] Funding Source: National Science Foundation
  11. Division of Computing and Communication Foundations
  12. Direct For Computer & Info Scie & Enginr [1317694] Funding Source: National Science Foundation
  13. Division Of Materials Research
  14. Direct For Mathematical & Physical Scien [1435964] Funding Source: National Science Foundation

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Scaffolded DNA origami has proven to be a versatile method for generating functional nanostructures with prescribed sub-100 nm shapes. Programming DNA-origami tiles to form large-scale 2D lattices that span hundreds of nanometers to the micrometer scale could provide an enabling platform for diverse applications ranging from metamaterials to surface-based biophysical assays. Toward this end, here we design a family of hexagonal DNA-origami tiles using computer aided design and demonstrate successful self-assembly of micrometer-scale 2D honeycomb lattices and tubes by controlling their geometric and mechanical properties including their interconnecting strands. Our results offer insight into programmed self-assembly of low-defect supra-molecular DNA-origami 2D lattices and tubes. In addition, we demonstrate that these DNA-origami hexagon tiles and honeycomb lattices are versatile platforms for assembling optical metamaterials via programmable spatial arrangement of gold nanoparticles (AuNPs) into cluster and superlattice geometries.

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