Publication | Closed Access
Programming Self-Assembly of DNA Origami Honeycomb Two-Dimensional Lattices and Plasmonic Metamaterials
220
Citations
63
References
2016
Year
EngineeringMolecular Self-assemblyOrigami MetamaterialsMetamaterialsBiofabricationFoldable StructureBiomedical EngineeringGold NanoparticlesDna NanotechnologyBiophysicsDna-origami Hexagon TilesMaterials ScienceNanotechnologyPlasmonic MetamaterialsMolecular EngineeringHierarchical AssemblyNanomaterialsSelf-assemblyHexagonal Dna-origami TilesNanoarchitectonicsNanostructures
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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