Adsorption of Ni2+ and Pb2+ from water using diethylenetriamine-grafted Spirodela polyrhiza: behavior and mechanism studies
Novel adsorbent, diethylenetriamine-grafted Spirodela polyrhiza (DSP), was synthesized via modifying natural S. polyrhiza (SP) with diethylenetriamine by cross-linking with epichlorohydrin and applied to adsorb Ni 2+ and Pb 2+ from water. The effecting parameters on adsorption of Ni 2+ and Pb 2+ suc...
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Veröffentlicht in: | Environmental science and pollution research international 2019-11, Vol.26 (33), p.34562-34574 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Novel adsorbent, diethylenetriamine-grafted
Spirodela polyrhiza
(DSP), was synthesized via modifying natural
S. polyrhiza
(SP) with diethylenetriamine by cross-linking with epichlorohydrin and applied to adsorb Ni
2+
and Pb
2+
from water. The effecting parameters on adsorption of Ni
2+
and Pb
2+
such as adsorbent dosage, pH, contact time, temperature, and initial concentration were studied through equilibrium experiments. The adsorption of Ni
2+
and Pb
2+
followed the pseudo-second-order model and the Langmuir isotherm adsorption model. The study discusses thermodynamic parameters, including changes in Gibbs free energy, entropy, and enthalpy, for the adsorption of Ni
2+
and Pb
2+
on DSP, and revealed that the adsorption process was spontaneous and exothermic under natural conditions. The maximum Ni
2+
and Pb
2+
adsorption capacities of DSP were 33.02 and 36.50 mg/g, respectively. The newly prepared materials were characterized through scanning electron microscopy (SEM), mapping analysis, and zeta potential analysis. Fourier transform infrared spectroscopy (FTIR) and X-ray photoelectron spectroscopy (XPS) analyses indicated that functional groups (-OH and N-H) were involved in Ni
2+
and Pb
2+
adsorption. Notably, DSP can be easily regenerated and reused for multiple cycles. Therefore, DSP is a promising adsorbent for effective Ni
2+
and Pb
2+
removal. |
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ISSN: | 0944-1344 1614-7499 |
DOI: | 10.1007/s11356-019-06558-0 |