| Literature DB >> 26378553 |
Monica Butnariu1, Petru Negrea2, Lavinia Lupa3, Mihaela Ciopec4, Adina Negrea5, Marius Pentea6, Ionut Sarac7, Ionel Samfira8.
Abstract
The effects of the sorption of environmental applications by various source materials of natural organic matter, i.e., bone powder, was examined. Sorption capacities and subsequent rare earth element retention characteristics of all metals tested were markedly increased by ionic task-specific. In this study, the abilities of three models' isotherms widely were used for the equilibrium sorption data: Langmuir, Freundlich and Redlich-Peterson. For all studied metal ions the maximum adsorption capacity is close to those experimentally determined. The characteristic parameters for each isotherm and related coefficients of determination have been determined. The experimental data achieved excellent fits within the following isotherms in the order: Langmuir > Redlich-Peterson > Freundlich, based on their coefficient of determination values. The bone powder has developed higher adsorption performance in the removal process of Nd(III), Eu(III), La(III) from aqueous solutions than in the case of the removal process of Cs(I), Sr(II) and Tl(I) from aqueous solutions. The described relationships provide direct experimental evidence that the sorption-desorption properties of bone powder are closely related to their degree of the type of the metal. The results suggest a potential for obtaining efficient and cost-effective engineered natural organic sorbents for environmental applications.Entities:
Keywords: bone powder; model isotherms; rare earth element
Mesh:
Substances:
Year: 2015 PMID: 26378553 PMCID: PMC4586675 DOI: 10.3390/ijerph120911278
Source DB: PubMed Journal: Int J Environ Res Public Health ISSN: 1660-4601 Impact factor: 3.390
Figure 1Experimental data and the sorption isotherm models for various metal ions adsorption onto bone powder (A) Nd (III), (B) Cs(I), (C) Sr(II), (D) Tl(I), (E) Eu(III), (F) La(III).
Isotherm parameters obtained for the sorption of metal ions onto bone powder.
| Isotherm | Parameter | Metal Ions | |||||
|---|---|---|---|---|---|---|---|
| Nd(III) | Cs(I) | Sr(II) | Tl(I) | Eu(III) | La(III) | ||
| Langmuir | 10.75 | 0.84 | 1.39 | 2.29 | 12.6 | 8.43 | |
| 10.9 | 0.98 | 1.61 | 2.5 | 12.7 | 8.70 | ||
| 0.349 | 0.0424 | 0.0444 | 0.0371 | 0.339 | 0.094 | ||
| 0.9980 | 0.9850 | 0.9920 | 0.9980 | 0.9970 | 0.9970 | ||
| 25.7 | 0.0246 | 0.0312 | 0.033 | 16.3 | 2.66 | ||
| 5.41 | 0.827 | 0.611 | 0.498 | 4.28 | 1.92 | ||
| 12.2 | 0.369 | 0.391 | 0.458 | 9.15 | 3.59 | ||
| Freundlich | 0.276 | 0.571 | 0.548 | 0.515 | 0.374 | 0.434 | |
| 2.965 | 0.0637 | 0.115 | 0.164 | 2.368 | 0.968 | ||
| 0.9100 | 0.9270 | 0.9570 | 0.9150 | 0.8550 | 0.938 | ||
| 20.41 | 0.214 | 0.362 | 1.994 | 54.26 | 20.3 | ||
| 5.41 | 1.326 | 1.052 | 2.193 | 3.10 | 2.586 | ||
| 10.28 | 0.824 | 1.065 | 3.069 | 15.97 | 9.695 | ||
| Redlich–Peterson | 0.794 | 0.832 | 0.718 | 0.817 | 0.740 | 0.668 | |
| 83.93 | 0.075 | 0.2315 | 0.0938 | 107.23 | 2.337 | ||
| 314 | 0.039 | 0.100 | 0.102 | 380 | 3.63 | ||
| 0.9920 | 0.9730 | 0.9800 | 0.9790 | 0.995 | 0.984 | ||
| 4.62 | 0.061 | 0.116 | 0.361 | 7.41 | 7.156 | ||
| 1.81 | 0.662 | 0.652 | 0.849 | 1.639 | 1.41 | ||
| 5.62 | 0.452 | 0.656 | 1.343 | 6.41 | 5.62 | ||
q—calculated adsorption capacity; K—sorption equilibrium constant; K—Freundlich constants; β—exponent; K—Redlich–Peterson isotherm constants; R—correlation coefficient; SSE—Sum of the Squares of the Errors; ARE—Average Relative Error; EABS—Sum of the Absolute Errors. All data were expressed as mean of three determinations.