| Literature DB >> 25699186 |
Soheila Hamidzadeh1, Marzieh Torabbeigi2, Seyed Jamaleddin Shahtaheri3.
Abstract
Magnetically modified activated carbon, which synthesized by nanomagnetic iron oxide, was used for fast and effective removal of Crystal Violet from aqueous solutions. The scanning electron microscopy (SEM) images of nano-adsorbent showed that the average sizes of adsorbent are less than 100 nm. The various parameters, affecting on adsorption process, were examined including pH and temperature of dye solution, dose of adsorbent, and contact time. Then, thermodynamic parameters of sorption were calculated. Langmuir and Freundlich isotherms were used to fit the resulting data. Adsorption kinetics was consistent with a pseudo second order equation. Thermodynamic parameters of adsorption, ∆H(0), and ∆S(0) were calculated. Also, for further investigations, nano magnetic iron oxides was synthesized and used as adsorbent. Sorption capacities were depending on the temperature varied from 44.7 to 67.1 mg/g and from 12.7 to 16.5 mg/g for magnetically modified activated carbon and nanomagnetic iron oxide, respectively.Entities:
Keywords: Crystal Violet; Freundlich isotherm; Langmuir isotherm; Magnetically modified activated carbon; Nano magnetic iron oxide
Year: 2015 PMID: 25699186 PMCID: PMC4333261 DOI: 10.1186/s40201-015-0156-4
Source DB: PubMed Journal: J Environ Health Sci Eng
Figure 1The SEM images of synthesized magnetically modified activated carbon.
Figure 2Effect of adsorbent dosage on adsorption percentage.
Figure 3Effect of contact time.
Figure 4Effect of pH.
Figure 5Eyring’s plot of adsorption process.
The thermodynamic parameters of adsorption of Crystal Violet on magnetically modified activated carbon
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| 300 | −6.14 | 0.055 | 10.22 |
| 313 | −7.03 | ||
| 323 | −7.51 | ||
| 333 | −8.05 | ||
| 343 | −8.50 |
Figure 6The fitting data of adsorption procedure by (a) pseudo-first order and (b) second order equations.
The rate constants and linear regressions of First order and Second order for adsorption of Crystal Violet on magnetically modified activated carbon and nanomagnetic iron oxide
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| 0.103 | 0.944 | 0.752 | 0.997 |
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| 0.230 | 0.901 | 1.38 × 10−2 | 0.962 |
Figure 7Langmuir isotherms in various temperatures.
Figure 8Freundlich isotherms in various temperatures.
The parameters of Langmuir and Freundlich isotherms at different temperatures for adsorption of Crystal Violet on magnetically modified activated carbon and nanomagnetic iron oxide
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| 20 | 44.7 | 0.40 | 0.995 | 12.7 | 1.90 | 0.969 |
| 40 | 57.8 | 0.65 | 0.983 | 21.9 | 2.10 | 0.930 | |
| 50 | 67.1 | 1.03 | 0.939 | 31.7 | 2.14 | 0.929 | |
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| 20 | 12.7 | 0.045 | 0.956 | 8.2 | 1.02 | 0.918 |
| 40 | 14.5 | 0.047 | 0.982 | 10.1 | 1.03 | 0.935 | |
| 50 | 16.5 | 0.051 | 0.970 | 15.5 | 1.19 | 0.952 | |
The previous studies on magnetic adsorbents to removal Crystal Violet
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| Magnetic charcoal | 10 mg cm−3 | [ |
| Magnetically labeled Baker's yeast cells | 85.9 mg g−1 | [ |
| magnetically modified | 41.7 mg g−1 | [ |
| Ferrofluid modified sawdust | 51.16 mg g−1 | [ |
| magnetically modified | 42.91 mg g−1 | [ |
| Magnetic fluid modified peanut husks | 80.9 mg g−1 | [ |
| Magnetically modified spent grain | 40.2 mg g−1 | [ |
| Magnetic carbon-iron oxide nanocomposite | 81.70 mg g−1 | [ |
| Magnetically modified spent coffee grounds | 68.1 mg g−1 | [ |
| Magnetically modified activated car bon | 67.1 mg g−1 | Present study |
| Nanomagnetic iron oxide | 16.5 mg g−1 | Present study |