| Literature DB >> 35211459 |
Inas A Ahmed1, Michael Badawi2, Adrián Bonilla-Petriciolet3, Eder C Lima4,5, Moaaz K Seliem6, Mohamed Mobarak7.
Abstract
In this study, a purified diatomite (PD) with a concentration of diatom frustules more than 92% SiO2 was utilized to synthesize a composite of MCM-41 silica under hydrothermal conditions. The as-synthesized PD/MCM-41 composite was characterized and tested as an adsorbent for the removal of Cr(VI) and Mn(VII) ions from aqueous solution. Results of X-ray diffraction (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM), and Fourier-transform infrared spectroscopy (FTIR) revealed that the diatom frustules of the PD were coated with MCM-41 mesoporous silica. Experimental isotherms of Cr(VI) and Mn(VII) adsorption were fitted to classical and advanced statistical physics models at 25°C-55°C and pH 3. The Langmuir model estimated monolayer adsorption capacities ranging from 144.1 to 162.2 mg/g for Cr(VI) and 166.2 to 177.0 mg/g for Mn(VII), which improved with increasing the solution temperature. Steric and energetic parameters obtained from a monolayer adsorption model with one adsorption site was utilized to explain the adsorption mechanism at a microscopic level. The number of Cr(VI) and Mn(VII) ions adsorbed on PD/MCM-41 active site (n) were 1.25-1.27 for Cr(VI) and 1.27-1.32 for Mn(VII), thus suggesting multi-interaction mechanisms. The density of PD/MCM-41 active sites (D M) was a key parameter to explain the adsorption of these heavy metals. The adsorbed quantities were maximum at 55°C, thus obtaining 102.8 and 110.7 mg/g for Cr(VI) and Mn(VII), respectively. Cr(VI) and Mn(VII) adsorption energies ranged from 18.48 to 26.70 kJ/mol and corresponded to an endothermic adsorption with physical forces. Entropy, free enthalpy, and internal energy associated to the adsorption of Cr(VI) and Mn(VII) ions were calculated, thus indicating that the removal of these pollutants was spontaneous. Overall, this article offers new interpretations for the Cr(VI) and Mn(VII) adsorption mechanisms on PD/MCM-41 composite, which are relevant to contribute to the development of effective water treatment processes.Entities:
Keywords: adsorption; hexavalent chromium; manganese; purified diatom/MCM-41; statistical physics modeling
Year: 2022 PMID: 35211459 PMCID: PMC8861454 DOI: 10.3389/fchem.2021.814431
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
Classical isotherm models used to analyze Cr(VI) and Mn(VII) adsorption onto the PD/MCM-41 composite.
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Statistical physics models for the Mn(VII) and Cr(VI) adsorption on PD/MCM-41 composite.
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| Model 2 |
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FIGURE 1Characterization of the PD/MCM-41 silica composite: (A) X-ray diffraction (XRD) patterns, (B, C) scanning electron microscopy (SEM) and (D) transmission electron microscopy (TEM) photographs, and (E) Fourier-transform infrared spectroscopy (FTIR) spectrum.
FIGURE 2Isotherm fitting of the Langmuir and Freundlich models for both metallic ions on PD/MCM-41 composite at different temperatures.
Parameters of isotherm models for the adsorption of Cr(VI) and Mn(VII) on PD/MCM-41 composite
| Isotherm model |
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| Langmuir | Cr(VI) | 25 | 144.1 | 0.011 | 0. 9870 | 1.80 |
| 40 | 154.3 | 0.013 | 0. 9918 | 3.69 | ||
| 55 | 162.2 | 0.018 | 0.9937 | 2.67 | ||
| Mn(VII) | 25 | 166.2 | 0.014 | 0. 9938 | 3.69 | |
| 40 | 174.4 | 0.018 | 0. 9953 | 1.95 | ||
| 55 | 177.0 | 0.02 | 0.9949 | 1.52 | ||
| Freundlich |
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| Cr(VI) | 25 | 2.212 | 0.811 | 0. 9836 | 2.01 | |
| 40 | 2.771 | 0.798 | 0. 9884 | 4.15 | ||
| 55 | 3.992 | 0.785 | 0.9899 | 4.88 | ||
| Mn(VII) | 25 | 3.087 | 0.807 | 0. 9911 | 8.12 | |
| 40 | 4.139 | 0.796 | 0. 9927 | 3.07 | ||
| 55 | 4.862 | 0.783 | 0.9928 | 1.97 | ||
Results of the modeling of Cr(VI) and Mn(VII) adsorption isotherms using different SPMs.
| SPMs | Adsorbates | 25°C | 40°C | 55°C | |||
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| Model 1 | Cr(VI) | 0.9926 | 3.09 | 0.9948 | 2.87 | 0.9978 | 3.25 |
| Mn(VII) | 0.9945 | 2.58 | 0.9966 | 2.48 | 0.9987 | 2.26 | |
| Model 2 | Cr(VI) | 0.9603 | 10.39 | 0.9705 | 9.17 | 0.9801 | 9.15 |
| Mn(VII) | 0.9713 | 9.39 | 0.9817 | 8.64 | 0.9828 | 9.56 | |
| Model 3 | Cr(VI) | 0.9506 | 12.09 | 0.9606 | 11.18 | 0.9697 | 10.43 |
| Mn(VII) | 0.9584 | 16.15 | 0.994 | 14.17 | 0.9974 | 13.26 | |
| Model 4 | Cr(VI) | 0.9482 | 16.09 | 0.9507 | 15.06 | 0.9521 | 14.15 |
| Mn(VII) | 0.9501 | 15.44 | 0.9436 | 16.11 | 0.9974 | 15.65 | |
FIGURE 3Modeling of adsorption isotherms of Cr(VI) and Mn(VII) on PD/MCM-41 composite using a monolayer statistical physics model with one adsorption energy model at 25°C–55°C.
FIGURE 4Statistical physics parameters for the adsorption of Cr(VI) and Mn(VII) on PD/MCM-41 composite at different temperatures.
Energetic and steric parameters calculated by Model 1 for the adsorption of Cr(VI) and Mn(VII) on PD/MCM-41 composite.
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| 25 | 1.27 | 71.29 | 91.34 | 24.62 | |
| Cr(VI) | 40 | 1.26 | 78.36 | 98.73 | 25.88 |
| 55 | 1.25 | 82.28 | 102.85 | 27.70 | |
| 25 | 1.32 | 72.39 | 95.55 | 18.48 | |
| Mn(VII) | 40 | 1.31 | 77.27 | 101.23 | 19.89 |
| 55 | 1.27 | 87.14 | 110.67 | 21.32 |
FIGURE 5Evolution of entropy, free enthalpy, and internal energy as a function of adsorbate concentration at different temperatures for the adsorption of Cr(VI) and Mn(VII) on PD/MCM-41 composite.