Issue 28, 2018

Dynamic strain in gold nanoparticle supported graphene induced by focused laser irradiation

Abstract

Graphene on noble-metal nanostructures constitutes an attractive nanocomposite with possible applications in sensors or energy conversion. In this work we study the properties of hybrid graphene/gold nanoparticle structures by Raman spectroscopy and scanning probe methods. The nanoparticles (NPs) were prepared by local annealing of gold thin films using a focused laser beam. The method resulted in a patterned surface, with NPs formed at arbitrarily chosen microscale areas. Graphene grown by chemical vapour deposition was transferred onto the prepared, closely spaced gold NPs. While we found that successive higher intensity (6 mW) laser irradiation increased gradually the doping and the defect concentration in SiO2 supported graphene, the same irradiation procedure did not induce such irreversible effects in the graphene supported by gold NPs. Moreover, the laser irradiation induced a dynamic hydrostatic strain in the graphene on Au NPs, which turned out to be completely reversible. These results can have implications in the development of graphene/plasmonic nanoparticle based high temperature sensors operating in dynamic regimes.

Graphical abstract: Dynamic strain in gold nanoparticle supported graphene induced by focused laser irradiation

Supplementary files

Article information

Article type
Paper
Submitted
09 Apr 2018
Accepted
11 Jun 2018
First published
12 Jun 2018
This article is Open Access
Creative Commons BY-NC license

Nanoscale, 2018,10, 13417-13425

Dynamic strain in gold nanoparticle supported graphene induced by focused laser irradiation

A. Pálinkás, P. Kun, A. A. Koós and Z. Osváth, Nanoscale, 2018, 10, 13417 DOI: 10.1039/C8NR02848F

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