| Literature DB >> 32260385 |
Alexa-Maria Croitoru1,2, Anton Ficai1,2, Denisa Ficai2, Roxana Trusca2, Georgiana Dolete2, Ecaterina Andronescu1,2, Stefan Claudiu Turculet3,4.
Abstract
The scope of this article is to develop composite membranes using chitosan (CS) and graphene oxide (GO) as adsorbents for the removal of inorganic pollutants such as heavy metal ions, particularly Pb2+, from aqueous solutions. GO was obtained by modified Hummers method and blended with CS solution. The introduction of ethylenediaminetetraacetic acid (EDTA) compound to CS/GO suspension lead to an increased adsorption capacity of CS/GO for the elimination of heavy metals by forming stable chelates with them. The synthesized membranes were examined by Fourier transform infrared spectroscopy (FTIR) and scanning electron microscopy (SEM), and the adsorption behaviour of Pb2+ from aqueous solutions using CS/EDTA/GO membranes was evaluated using inductively coupled plasma mass spectrometry (ICP-MS). The adsorption performance of Pb2+ ions was studied by monitoring the concentration of Pb2+ against the adsorption period at an initial content of the adsorbent. The maximum adsorption efficiency of Pb2+ metal ions reached 767 mg·g-1 for CS/EDTA/GO 0.1%, 889 mg·g-1 for CS/EDTA/GO 0.3%, 970 mg·g-1 for CS/EDTA, 853 mg·g-1 for CS and 1526 mg·g-1 for GO. These findings show promising potential for CS/EDTA/GO membranes as effective adsorbent materials for the removal of heavy metal ions in water.Entities:
Keywords: EDTA; chitosan; graphene oxide; lead; nanoadsorbent
Year: 2020 PMID: 32260385 PMCID: PMC7178673 DOI: 10.3390/ma13071687
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Scheme 1Synthesis of graphene oxide (GO) [29].
Scheme 2Schematic illustration of the preparation of chitosan (CS)/ ethylenediaminetetraacetic acid (EDTA)/GO films.
Figure 1Digital photos of the samples: (a) chitosan (CS) film, (b) chitosan/ethylenediaminetetraacetic acid (CS/EDTA) film, (c) chitosan/ethylenediaminetetraacetic acid/graphene oxide (CS/EDTA/GO) film 0.1%, and (d) CS/EDTA/GO film 0.3%.
Figure 2Fourier Transform Infrared Spectroscopy (FTIR) spectra for CS and CS/EDTA films.
Figure 3FTIR spectra for GO, CS/EDTA/GO 0.1% and CS/EDTA/GO 0.3%.
Figure 4Scanning electron microscopy (SEM) images for GO at 1000 × (left) and 50 k× magnification (right).
Figure 5SEM images for CS at 1000 × (left) and 5000 × magnification (right)
Figure 6SEM images for (a) CS/EDTA, (b) CS/EDTA/GO 0.1% and (c) CS/EDTA/GO 0.3% at 1000 × (left) and 5000 × magnification (right).
Figure 7Sorption capacity of the membranes CS, CS/EDTA, CS/EDTA/GO 0.1%, CS/EDTA/GO 0.3% and GO sheets. * Standard Deviation (SD) = 1–3%.