Correlation Engine 2.0
Clear Search sequence regions


  • catalysis (1)
  • glycol (1)
  • gold (3)
  • iron oxide (1)
  • molecular weight (1)
  • oligo (1)
  • peptoid (7)
  • platinum (1)
  • silver oxide (1)
  • vapor (1)
  • Sizes of these terms reflect their relevance to your search.

    Controlling the interfaces and interactions of colloidal nanoparticles (NPs) via tethered molecular moieties is crucial for NP applications in engineered nanomaterials, optics, catalysis, and nanomedicine. Despite a broad range of molecular types explored, there is a need for a flexible approach to rationally vary the chemistry and structure of these interfacial molecules for controlling NP stability in diverse environments, while maintaining a small size of the NP molecular shell. Here, we demonstrate that low-molecular-weight, bifunctional comb-shaped, and sequence-defined peptoids can effectively stabilize gold NPs (AuNPs). The generality of this robust functionalization strategy was also demonstrated by coating of silver, platinum, and iron oxide NPs with designed peptoids. Each peptoid (PE) is designed with varied arrangements of a multivalent AuNP-binding domain and a solvation domain consisting of oligo-ethylene glycol (EG) branches. Among designs, a peptoid (PE5) with a diblock structure is demonstrated to provide a superior nanocolloidal stability in diverse aqueous solutions while forming a compact shell (∼1.5 nm) on the AuNP surface. We demonstrate by experiments and molecular dynamics simulations that PE5-coated AuNPs (PE5/AuNPs) are stable in select organic solvents owing to the strong PE5 (amine)-Au binding and solubility of the oligo-EG motifs. At the vapor-aqueous interface, we show that PE5/AuNPs remain stable and can self-assemble into ordered 2D lattices. The NP films exhibit strong near-field plasmonic coupling when transferred to solid substrates.

    Citation

    Shih-Ting Wang, Honghu Zhang, Sunting Xuan, Dmytro Nykypanchuk, Yugang Zhang, Guillaume Freychet, Benjamin M Ocko, Ronald N Zuckermann, Nevena Todorova, Oleg Gang. Compact Peptoid Molecular Brushes for Nanoparticle Stabilization. Journal of the American Chemical Society. 2022 May 11;144(18):8138-8152

    Expand section icon Mesh Tags

    Expand section icon Substances


    PMID: 35452210

    View Full Text