4.7 Article

Fabrication of three-dimensional nitrogen-doped reduced graphene oxide/tin oxide composite aerogels as high-performance electromagnetic wave absorbers

Journal

JOURNAL OF COLLOID AND INTERFACE SCIENCE
Volume 602, Issue -, Pages 282-290

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2021.06.029

Keywords

Graphene; Composite aerogel; Tin dioxide; Nitrogen doping; Electromagnetic wave absorption

Funding

  1. Anhui Provincial Natural Science Foundation [2008085J27]
  2. Research Foundation of the Institute of Environment-friendly Materials and Occupational Health (Wuhu)
  3. Anhui University of Science and Technology [ALW2020YF05]
  4. China Postdoctoral Science Foundation [2019M652160]

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The nitrogen-doped reduced graphene oxide/tin oxide composite aerogels with unique 3D porous network structure were successfully prepared for efficient electromagnetic wave absorption, exhibiting lightweight characteristics and high absorption performance.
Developing light-weight and high-efficiency electromagnetic wave (EMW) absorbers has been considered as an effective strategy to resolve the electromagnetic radiation pollution problem. Herein, nitrogen-doped reduced graphene oxide/tin oxide (NRGO/SnO2) composite aerogels were facilely prepared through the hydrothermal process and subsequent lyophilization treatment. Morphological characterization results manifested that the attained NRGO/SnO2 composite aerogels possessed unique threedimensional (3D) porous network structure constituted by the tiny SnO2 nanoparticles decorated wrinkled surfaces of flake-like NRGO. Moreover, excellent EMW absorption performance could be achieved through facilely regulating the additive volumes of ethylenediamine and filler contents. Impressively, the composite aerogel with a doped nitrogen concentration of 6.5 wt% displayed the optimal minimum reflection loss of -62.3 dB at a matching thickness of 3.5 mm and the broadest effective absorption bandwidth of 5.1 GHz under an ultrathin thickness of merely 1.6 mm. Furthermore, the as-synthesized composite aerogels showed a light-weight characteristic with the low bulk density of 19.9-25.7 mgcm(-3). Additionally, the potential EMW absorption mechanisms of obtained composite aerogels were revealed, which were mainly ascribed to the unique 3D porous network structure, synergistic effects between conduction loss and polarization loss, as well as the balanced attenuation loss and impedance matching. This work could be valuable for the structural design and fabrication of 3D graphene-based dielectric compos-ites as light-weight and high-efficiency EMW absorbers. (c) 2021 Elsevier Inc. All rights reserved.

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