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Symmetry-Breaking of Nanoparticle Surface Function Via Conformal DNA Design

  • Xin Xu
  • , Huacheng Li
  • , Zhiwei Hu
  • , Majid Khan
  • , Wen Chen
  • , Huatian Hu
  • , Qiangbin Wang*
  • , Xiang Lan*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Asymmetric surface functionalization of complex nanoparticles to control their directional self-assembly remains a considerable challenge. Here, we demonstrated a conformal DNA design strategy for flexible remodeling of the surface of complex nanoparticles, taking Au nanobipyramids (AuNBPs) as a model. We sheathed one or both tips of AuNBPs into conformal DNA origami with an exceptionally accurate orientation control. Such asymmetrically and symmetrically distributed surface patches possess regioselective, sequence, and site-specific DNA binding capabilities. As a result, we realized a series of prototypical multicomponent “colloidal molecules” made of AuNBPs and Au nanospheres (AuNSs) with defined directionality and number of “bonding valence” as well as 1D and 3D hierarchical assemblies, e.g., inverse core-satellites of AuNBPs and AuNSs, side-by-side and tip-to-tip linear assemblies of AuNBPs, and 3D helical superstructures of AuNBPs with tunable twists. These findings inspire new opportunities for nanoparticle surface engineering and the high-order self-assembly of nanoarchitectures with higher complexity and broadened functionalities.

Original languageEnglish
Pages (from-to)6496-6505
Number of pages10
JournalNano Letters
Volume24
Issue number22
DOIs
StatePublished - 5 Jun 2024

Keywords

  • Chirality
  • Colloidal Molecules
  • DNA Nanotechnology
  • Hierarchical Self-Assembly
  • Nanoparticle Superstructures

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