Magnetic Fe/Fe3C@C nanoadsorbents for efficient Cr (VI) removal
Date
2022Version
Acceso abierto / Sarbide irekia
Type
Artículo / Artikulua
Version
Versión publicada / Argitaratu den bertsioa
Project Identifier
Impact
|
10.3390/ijms232315135
Abstract
Magnetic carbon nanocomposites (α-Fe/Fe3C@C) synthesized employing fructose and
Fe3O4 magnetite nanoparticles as the carbon and iron precursors, respectively, are analyzed and
applied for the removal of Cr (VI). Initial citric acid-coated magnetite nanoparticles, obtained through
the co-precipitation method, were mixed with fructose (weight ratio 1:2) and thermally treated at
different anneal ...
[++]
Magnetic carbon nanocomposites (α-Fe/Fe3C@C) synthesized employing fructose and
Fe3O4 magnetite nanoparticles as the carbon and iron precursors, respectively, are analyzed and
applied for the removal of Cr (VI). Initial citric acid-coated magnetite nanoparticles, obtained through
the co-precipitation method, were mixed with fructose (weight ratio 1:2) and thermally treated at
different annealing temperatures (Tann = 400, 600, 800, and 1000 ◦C). The thermal decomposition of
the carbon matrix and the Fe3O4 reduction was followed by thermogravimetry (TGA) and Fourier
transform infrared (FTIR) spectroscopy, X-ray diffraction, Raman spectroscopy, SQUID magnetometry,
and N2 adsorption–desorption isotherms. A high annealing temperature (Tann = 800 ◦C) leads to
optimum magnetic adsorbents (high magnetization enabling the magnetic separation of the adsorbent
from the aqueous media and large specific surface area to enhance the pollutant adsorption process).
Cr (VI) adsorption tests, performed under weak acid environments (pH = 6) and low pollutant
concentrations (1 mg/L), confirm the Cr removal ability and reusability after consecutive adsorption
cycles. Physical adsorption (pseudo-first-order kinetics model) and multilayer adsorption (Freundlich
isotherm model) characterize the Cr (VI) absorption phenomena and support the enhanced adsorption
capability of the synthesized nanostructures. [--]
Subject
Adsorption,
Chromium,
Magnetic nanocomposite,
Thermal decomposition
Publisher
MDPI
Published in
International Journal of Molecular Sciences 2022, 23, 15135
Departament
Universidad Pública de Navarra. Departamento de Ciencias /
Nafarroako Unibertsitate Publikoa. Zientziak Saila /
Universidad Pública de Navarra/Nafarroako Unibertsitate Publikoa. Institute for Advanced Materials and Mathematics - INAMAT2
Publisher version
Sponsorship
The research was funded by MCIN/AEI/10.13039/501100011033, grant PID2020-116321RB-C21 and Navarra Government, Departamento de Universidad Innovación y Transformación Digital, project PC162-163 T3CE.