Removal of copper ions from water using polysaccharide-constructed hydrogels
•New polysaccharide hydrogels were developed for adsorption of heavy metal ions.•Polysaccharide hydrogels were obtained by graft polymerization technique.•Influence of salecan amount on the gel structure and adsorption performance was investigated.•Adsorption data were fitted the best with the Freun...
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Veröffentlicht in: | Carbohydrate polymers 2019-04, Vol.209, p.101-110 |
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Sprache: | eng |
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Zusammenfassung: | •New polysaccharide hydrogels were developed for adsorption of heavy metal ions.•Polysaccharide hydrogels were obtained by graft polymerization technique.•Influence of salecan amount on the gel structure and adsorption performance was investigated.•Adsorption data were fitted the best with the Freundlich isotherm models.
Polysaccharides are an important class of materials that are often exploited in the fields of food, agriculture, biomedical engineering and wastewater treatment owing to their unique and tunable properties. In this work, we utilize an inexpensive and sustainable extracellular polysaccharide salecan (EPS), which is produced by bacterium Agrobacterium sp. ZX09, as a hydrogel matrix, poly(3-sulfopropyl methacrylate potassium salt) (PSM) as side chains to fabricate EPS-grafted-PSM adsorbents through a simple one-pot approach. Scanning electron microscope, X-ray diffraction, Fourier transformed infrared spectroscopy, rheometry and thermogravimetry were conducted to characterize the physicochemical properties of resultant adsorbents. We noticed that EPS not only served as the host chains of network to adjust the water uptake ability of adsorbents, but also endued them with tunable polarity. Further, the adsorption behaviors of developed adsorbents to copper ions (Cu2+) were explored: these gels present high absorption ability for Cu2+ through a chemical adsorption process which well described by Freundlich isotherm and pseudo-second-order kinetic models. In summary, the approach exhibited in this work opens a new avenue to design polysaccharide-based materials for Cu2+ adsorption. |
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ISSN: | 0144-8617 1879-1344 |
DOI: | 10.1016/j.carbpol.2019.01.015 |