Issue 37, 2023

Dumbbells, chains, and ribbons: anisotropic self-assembly of isotropic nanoparticles

Abstract

Functionalizing the surface of metal nanoparticles can assure their stability in solution or mediate their self-assembly into aggregates with controlled shapes. Here we present a computational study of the colloidal aggregation of gold nanoparticles (Au NPs) isotropically functionalized by a mixture of charged and hydrophobic ligands. We show that, by varying the relative proportion of the two ligands, the NPs form anisotropic aggregates with markedly different topologies: dumbbells, chains, or ribbons. In all cases, two kinds of connections keep the aggregates together: hydrophobic bonds and ion bridges. We show that the anisotropy of the aggregates derives from the NP shell reshaping due to the formation of the hydrophobic links, while ion bridges are accountable for the “secondary structure” of the aggregates. Our findings provide a general physical principle that can also be exploited in different self-assembled systems: anisotropic/directional aggregation can be achieved starting from isotropic objects with a soft, deformable surface.

Graphical abstract: Dumbbells, chains, and ribbons: anisotropic self-assembly of isotropic nanoparticles

Supplementary files

Article information

Article type
Communication
Submitted
23 May 2023
Accepted
16 Aug 2023
First published
17 Aug 2023
This article is Open Access
Creative Commons BY-NC license

Nanoscale, 2023,15, 15153-15160

Dumbbells, chains, and ribbons: anisotropic self-assembly of isotropic nanoparticles

E. Lavagna, S. Salassi, D. Bochicchio and G. Rossi, Nanoscale, 2023, 15, 15153 DOI: 10.1039/D3NR02384B

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