| Literature DB >> 29402918 |
Sara Abalde-Cela1,2, Patricia Taladriz-Blanco3,4,5, Marcelo Ganzarolli de Oliveira4, Chris Abell3.
Abstract
The synthesis of anisotropic metallic nanoparticles (NPs) has been a field of intense and challenging research in the past decade. In this communication, we report on the reproducible and highly controllable synthesis of monodisperse branched gold nanoparticles in a droplet-based microfluidics platform. The process has been automated by adapting two different bulk synthetic strategies to microdroplets, acting as microreactors, for NP synthesis: a surfactant-free synthesis and a surfactant-assisted synthesis. Microdroplets were generated in two different microfluidic devices designed to accommodate the requirements of both bulk syntheses. The epitaxial growth of AuNSTs inside the microdroplets allowed for a fine control of reagent mixing and local concentrations during particle formation. This is the first time branched gold NPs have been synthesised in a microfluidics platform. The monodispersity of the product was comparable to the synthesis in bulk, proving the potential of this technology for the continuous synthesis of high quality anisotropic NPs with improved reproducibility.Entities:
Year: 2018 PMID: 29402918 PMCID: PMC5799180 DOI: 10.1038/s41598-018-20754-x
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.996
Figure 1Surfactant-free synthesis of AuNSTs in a microdroplets based platform; (a) schematic representation of the microfluidic chip design; (b) optical images corresponding to different points of the microfluidic chip where numbers depicting different areas of the device in (a) correspond to optical images in (b).
Figure 2PVP-based synthesis of AuNSTs in a microdroplets based platform. (a) Microfluidic chip design indicating the reagents injected in each of the inlets; (b) Optical images corresponding to different points of the microfluidic chip. Numbers depicting different areas of the device in (a) correspond with optical images in (b).
Figure 3Transmission electron microscopy images at different magnifications of AuNSTs obtained via surfactant free synthesis using 30 μM Ag+ (a,b and c) and PVP-based synthesis in microdroplets (d,e and f).