Issue 19, 2021

Effect of surface engineering on ethylamine-mediated plasmonic gold nanoparticle assembly

Abstract

This article describes a novel strategy for assembling gold nanoparticles (AuNPs) into chainlike structures and modulating their assembly by surface engineering. The chainlike assemblies are induced to form by adding ethylamine (EA) into a suspension of AuNPs, and the volume ratio of ethanol/water greatly affects the assembly speed and length of the chainlike assemblies. By comparing various structural analogs of EA, it is demonstrated that the primary amine of EA is critically important for AuNP assembly. This study also reveals that besides dielectric surrounding and destabilizing agents, surface engineering also significantly influences the optical properties of plasmonic nanostructures. During this assembly, we have found that two kinds of additives could inhibit or mitigate the AuNP assembly, which were barely reported. The effects of AgNO3 and halogen compounds, especially KI, on the assembly of AuNPs were studied in detail. Possible mechanisms for controlling AuNP assembly through surface engineering are proposed. Taken together, this study provides a new strategy to regulate the assembly of plasmonic nanoparticles and points out the importance of surface engineering in assembly.

Graphical abstract: Effect of surface engineering on ethylamine-mediated plasmonic gold nanoparticle assembly

Supplementary files

Article information

Article type
Research Article
Submitted
12 Apr 2021
Accepted
03 Aug 2021
First published
04 Aug 2021

Mater. Chem. Front., 2021,5, 7323-7332

Effect of surface engineering on ethylamine-mediated plasmonic gold nanoparticle assembly

C. Zhou, T. Sun, M. Gong, Z. Xu, L. Zhang, Q. Li, M. Du, X. Kang and Y. Liu, Mater. Chem. Front., 2021, 5, 7323 DOI: 10.1039/D1QM00569C

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