Microwave-Enabled Size Control of Iron Oxide Nanoparticles on Reduced Graphene Oxide.

Langmuir

Department of Chemical Engineering, The Pennsylvania State University, University Park, Pennsylvania 16802, United States.

Published: September 2021

AI Article Synopsis

  • Nanoparticle-functionalized 2D materials, like reduced graphene oxide (rGO), show potential for various applications but face challenges in controlled nanoparticle growth.
  • Researchers achieved controlled synthesis of small iron oxide nanoparticles on rGO networks using rapid localized heating with microwaves, which decomposes iron nitrate and minimizes crystal growth.
  • This microwave method results in a more uniform nanoparticle size distribution compared to traditional heating, suggesting its broader applicability for synthesizing different transition metal oxides on rGO.

Article Abstract

Nanoparticle-functionalized 2D material networks are promising for a wide range of applications, but in situ formation of nanoparticles is commonly challenged by rapid growth. Here, we demonstrate controlled synthesis of small and dispersed iron oxide nanoparticles on reduced graphene oxide (rGO) networks through rapid localized heating with microwaves with low-cost iron nitrate as the precursor. The strong coupling of the microwave radiation with the rGO network rapidly heats the network locally to decompose the iron nitrate and generate iron oxide nanoparticles, while cessation of microwaves leads to rapid cooling to minimize crystal growth. Small changes in the microwave reaction time (<1 min) led to very large changes in the iron oxide morphology. The solid-state microwave syntheses produced narrower nanoparticle size distribution than conventional heating. These results illustrate the potential of solid-state microwave syntheses to control the nanoparticle size on 2D materials through rapid localized heating under the microwave process conditions, which should be extendable to a variety of transition metal oxide-rGO systems.

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Source
http://dx.doi.org/10.1021/acs.langmuir.1c01990DOI Listing

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