Response surface methodology as a powerful tool to optimize the synthesis of polymer-based graphene oxide nanocomposites for simultaneous removal of cationic and anionic heavy metal contaminants

dc.contributor.authorPerez, Jem Valerie
dc.contributor.authorNadres, Enrico T.
dc.contributor.authorNguyen, Hang N.
dc.contributor.authorDalida, Maria Lourdes P.
dc.contributor.authorRodrigues, Debora F.
dc.date.accessioned2020-03-10T18:19:34Z
dc.date.available2020-03-10T18:19:34Z
dc.date.issued3/28/2017
dc.description.abstractNanocomposites containing graphene oxide (GO), polyethyleneimine (PEI), and chitosan (CS) were synthesized for chromium(VI) and copper(II) removal from water. Response surface methodology (RSM) was used for the optimization of the synthesis of the CS–PEI–GO beads to achieve simultaneous maximum Cr(VI) and Cu(II) removals. The RSM experimental design involved investigating different concentrations of PEI (1.0–2.0%), GO (500–1500 ppm), and glutaraldehyde (GLA) (0.5–2.5%), simultaneously. Batch adsorption experiments were performed to obtain responses in terms of percent removal for both Cr(VI) and Cu(II) ions. A second-order polynomial equation was used to model the relationship between the synthesis conditions and the adsorption responses. High R2 values of 0.9848 and 0.8327 for Cr(VI) and Cu(II) removal, respectively, were obtained from the regression analyses, suggesting good correlation between observed experimental values and predicted values by the model. The optimum bead composition contained 2.0% PEI, 1500 ppm GO, and 2.08% GLA, and allowed Cr(VI) and Cu(II) removals of up to 91.10% and 78.18%, respectively. Finally, characterization of the structure and surface properties of the optimized CS–PEI–GO beads was carried out using X-ray diffraction (XRD), porosity and BET surface area analysis, scanning electron microscopy (SEM), Fourier transform infrared spectroscopy (FTIR), and X-ray photoelectron spectroscopy (XPS), which showed favorable adsorbent characteristics as given by a mesoporous structure with high surface area (358 m2 g?1) and plenty of surface functional groups. Overall, the synthesized CS–PEI–GO beads were proven to be effective in removing both cationic and anionic heavy metal pollutants.
dc.identifier.citationCopyright 2017 RSC Advances. Recommended citation: Perez, Jem Valerie D., Enrico T. Nadres, Hang Ngoc Nguyen, Maria Lourdes P. Dalida, and Debora F. Rodrigues. "Response surface methodology as a powerful tool to optimize the synthesis of polymer-based graphene oxide nanocomposites for simultaneous removal of cationic and anionic heavy metal contaminants." RSC Advances 7, no. 30 (2017): 18480-18490. DOI: 10.1039/c7ra00750g URL: https://pubs.rsc.org/en/content/articlehtml/2017/ra/c7ra00750g Reproduced in accordance with the original publisher’s licensing terms and with permission from the author(s).
dc.identifier.urihttps://hdl.handle.net/10657/6030
dc.language.isoen_US
dc.publisherRSC Advances
dc.subjectN/A
dc.titleResponse surface methodology as a powerful tool to optimize the synthesis of polymer-based graphene oxide nanocomposites for simultaneous removal of cationic and anionic heavy metal contaminants
dc.typeArticle

Files

Original bundle

Now showing 1 - 1 of 1
Loading...
Thumbnail Image
Name:
Rodrigues_2017_ResponseSurfaceMethodology.pdf
Size:
1.52 MB
Format:
Adobe Portable Document Format

License bundle

Now showing 1 - 1 of 1
No Thumbnail Available
Name:
license.txt
Size:
4.69 KB
Format:
Plain Text
Description: