| Literature DB >> 31664181 |
Sattam Fahad Almojil1, Mohamed Abdelhalim Othman2.
Abstract
The elements constituting a layered double hydroxides material provide many alternatives for its optimization. Ten different layered double hydroxides materials with various combinations of Ni, Cu, Zn, Al, Cr, and Fe elements were studied as sorbent materials for phosphate ion. The type of element used in the layered double hydroxides affected the uptake capacity of phosphate. The influence of a specific element alone was not the primary role of enhancing the sorption performance of phosphate ion on the LDHs material. However, using specific two or three elements together is the key to achieve the best result due to synergistic effects. BET surface area of the sorbent showed no correlation with phosphate uptake. From the examined materials, Four layered double hydroxides of Cu-Zn-Cr, Zn-Cr, Ni-Al, and Cu-Ni-Cr showed high phosphate sorption capability. Sorption equilibrium isotherm, reaction kinetics, and desorption of phosphate from the sorbent materials were also investigated.Entities:
Year: 2019 PMID: 31664181 PMCID: PMC6820524 DOI: 10.1038/s41598-019-52031-w
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Specification of batch sorption experiment.
| Experiment | Sample size (mg of LDHs) | Volume of solution (mL) | Initial phosphate concentration (mg/L) | Duration of the sorption process |
|---|---|---|---|---|
| Screening best LDHs material | 200 | 100 | 20 | 24 h |
| Sorption isotherm | 50 | 50 | 5, 10, 20, 40, 80, 100 and 160 | 24 h |
| Sorption kinetics | 700 | 700 | 20 | 5, 10, 15, 20, 30, 45, 60, 90 and 120 min |
| pH effects | 50 | 50 | 20 | 24 h |
| Desorption performance | 400 | 400 | 20 | 24 h |
Figure 1XRD patterns for the synthesized LDHs sorbents.
Characteristics of sorbents and phosphate uptake quantity in the screening experiment.
| SN | Composition of sorbent(a) | BET surface area (m2/g) | Pore Volume(c) (cm3/g) | Nanoparticle size(c) (nm) | Phosphate Sorption Quantity, mg P/g | |
|---|---|---|---|---|---|---|
| Nominal | As-synthesized(b) | |||||
| 1 | Ni0.67Al0.33 | Ni0.66Al0.34 | 94 | 0.010 | 64 | 9.6 |
| 2 | Ni0.67Cr0.33 | Ni0.66Cr0.34 | 20 | 0.013 | 303 | 5.0 |
| 3 | Ni0.67Fe0.33 | Ni0.64Fe0.36 | 99 | 0.205 | 61 | 6.9 |
| 4 | Cu0.33Ni0.33Al0.33 | Cu0.35Ni0.32Al0.33 | 15 | 0.011 | 667 | 3.5 |
| 5 | Cu0.33Ni0.33Cr0.33 | Cu0.35Ni0.31Cr0.34 | 52 | 0.059 | 115 | 9.5 |
| 6 | Cu0.33Ni0.33Fe0.33 | Cu0.35Ni0.31Fe0.34 | 71 | 0.223 | 85 | 7.6 |
| 7 | Cu0.33Zn0.33Al0.33 | Cu0.36Zn0.32Al0.32 | 33 | 0.230 | 181 | 5.3 |
| 8 | Cu0.33Zn0.33Cr0.33 | Cu0.33Zn0.32Cr0.35 | 141 | 0.268 | 42 | 9.8 |
| 9 | Zn0.67Al0.33 | Zn0.66Al0.34 | 33 | 0.231 | 183 | 6.6 |
| 10 | Zn0.67Cr0.33 | Zn0.66Cr0.34 | 48 | 0.089 | 125 | 9.5 |
aAll chemical formula contains the following suffix .
bFrom ICP-OES chemical analysis.
cFrom N2 sorption measurement, BET method at 80 °C.
Figure 2Phosphate uptakes by the different LDHs compounds.
Figure 3Relative affinity of elements to uptake phosphate ion.
Figure 4Freundlich and Langmuir sorption isotherm of phosphate onto Cu-Zn-Cr LDHs.
Figure 5Kinetics of phosphate sorption onto Cu-Zn-Cr LDHs.
Figure 6Effect of pH on the sorption capacity of phosphate onto Cu-Zn-Cr LDHs.