| Literature DB >> 25184050 |
Babak Kakavandi1, Roshanak Rezaei Kalantary2, Mahdi Farzadkia2, Amir Hossein Mahvi3, Ali Esrafili2, Ali Azari4, Ahmad Reza Yari5, Allah Bakhsh Javid6.
Abstract
Recently, adsorption process has been introduced as a favorable and effective technique for the removal of metal ions from aqueous solutions. In the present study, bimetallic nanoparticles consisting of zero valent iron and silver were loaded on the activated carbon powder for the preparation of a new adsorbent (PAC-Fe(o)/Ag). The above adsorbent was characterized by using XRD, SEM and TEM techniqes. Experimental data were exploited for kinetic, equilibrium and thermodynamic evaluations related to the adsorption processes. The Cr(VI) adsorption process was found to be favorable at pH 3 and it reached equilibrium state within 60 min. The stirring rate did not have a significant effect on the adsorption efficiency. Furthermore, the monolayer adsorption capacity of Cr(VI) based on the Langmuir model was measured to be 100 mg/g. The experimental equilibrium data were fitted to the Freundlich adsorption and pseudo second-order models. According to the thermodynamic study, the adsorption process was spontaneous and endothermic in nature, indicating the adsorption capacity increases with increasing the temperature. The results also revealed that the synthesized composite can be potentially applied as a magnetic adsorbent to remove Cr(VI) contaminants from aqueous solutions.Entities:
Keywords: Activated carbon; Adsorption; Bimetallic; Chromium; nZVI
Year: 2014 PMID: 25184050 PMCID: PMC4147180 DOI: 10.1186/s40201-014-0115-5
Source DB: PubMed Journal: J Environ Health Sci Eng
Figure 1Schematic of Cr(VI) adsorption and removal by PAC-Fe /Ag composite.
The linear equations and parameters regarding Cr(VI) adsorption onto PAC-Fe /Ag
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| Isotherms | Langmuir |
| KL and qm |
| Freundlich |
| KF and n | |
| Kinetics | Pseudo first-order | ln(qe − qt) = ln qe − k1t | qe and k1 |
| Pseudo second-order |
| qe and K2 |
Figure 2SEM images of PAC (a) and PAC-Fe /Ag (b).
Figure 3XRD analysis of PAC-Fe /Ag (a), magnetic separation of PAC-Fe /Ag from aqueous solution (insert) and TEM image for PAC-Fe /Ag (b).
Figure 4Effect of pH (a) and contact time (b) on adsorption Cr(VI) onto PAC-Fe /Ag (200 rpm agitation speed, 0.3 g/l adsorbent, 4 mg/L initial Cr(VI) concentration and 20 ± 1°C).
Figure 5Effect of agitation speed on Cr(VI) removal using PAC-Fe /Ag (C = 4 mg/L, pH = 3.0 ± 0.1, contact time = 60 min, adsorbent dose = 0.3 g/L and 20 ± 1°C).
Figure 6Effect of adsorbent dosage (a) and initial Cr(VI) concentration (b) on removal efficiency and adsorption capacity of Cr using PAC-Fe /Ag (pH =3.0 ± 0.1, contact time = 60 min and 20 ± 1°C).
The parameters regarding the adsorption isotherm models for Cr(VI) adsorption on PAC-Fe /Ag
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| Freundlich | qm(mg/g) | 100 |
| kL(L/mg) | 0.15 | |
| R2 | 0.952 | |
| RL | 0.625 | |
| Langmuir | kf(mg/g(Lmg)/n) | 13.83 |
| n | 2.1 | |
| R2 | 0.991 | |
Figure 7The Langmuir (a), Freundlich (b) isotherm models and pseudo first-order (c) and pseudo second-order (d) kinetic models for the adsorption of Cr(VI) on PAC-Fe /Ag.
Maximum adsorption capacities (q ) of Cr(VI) on PAC-Fe /Ag and the other adsorbents documented in the literature
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| PAC-Feo/Ag | 100.0 | This study |
| Graphene oxide | 65.2 | [ |
| Single-wall carbon nanotubes | 20.3 | [ |
| nZVI–Fe3O4 nanocomposites | 100.0 | [ |
| Activated carbon | 3.46 | [ |
| Saw dust | 20.70 | [ |
| Chitosan | 35.6 | [ |
| MWCNTs (HNO3) | 9.5 | [ |
| MnO2/Fe3O4/o-MWCNTs | 186.9 | [ |
| Powdered activated carbon | 46.9 | [ |
| Maghemite nanoparticles | 19.2 | [ |
| Multi-wall carbon nanotubes | 2.48 | [ |
The parameters regarding the adsorption kinetic models of Cr(VI) on PAC-Fe /Ag
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| Pseudo first-order | qe,cal(mg/g) | 3.3 | 7.22 |
| k1(min−1) | 0.79 | ||
| R2 | 0.844 | ||
| Pseudo second-order | qe,cal(mg/g) | 7.51 | |
| k2(g/mg)(min−1) | 0.025 | ||
| R2 | 0.982 | ||
Figure 8Van’t Hoff curve for Cr(VI) adsorption on PAC-Fe /Ag.
The values of thermodynamic parameters of Cr(VI) adsorption on PAC-Fe /Ag
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| 298 | 3.69 | −9.25 | 146.9 | −0.45 |
| 303 | 3.67 | −9.14 | ||
| 313 | 2.36 | −6.04 | ||
| 323 | 1.66 | −4.33 |