| Literature DB >> 27829889 |
Élise Euvrard1, Nadia Morin-Crini1, Coline Druart1, Justine Bugnet1, Bernard Martel2, Cesare Cosentino3, Virginie Moutarlier4, Grégorio Crini1.
Abstract
In this study, a polymer, prepared by crosslinking cyclodextrin (CD) by means of a polycarboxylic acid, was used for the removal of pollutants from spiked solutions and discharge waters from the surface treatment industry. In spiked solutions containing five metals, sixteen polycyclic aromatic hydrocarbons (PAH) and three alkylphenols (AP), the material exhibited high adsorption capacities: >99% of Co2+, Ni2+ and Zn2+ were removed, between 65 and 82% of the PAHs, as well as 69 to 90% of the APs. Due to the structure of the polymer and its specific characteristics, such as the presence of carboxylic groups and CD cavities, the adsorption mechanism involves four main interactions: ion exchange, electrostatic interactions and precipitation for metal removal, and inclusion complexes for organics removal. In industrial discharge waters, competition effects appeared, especially because of the presence of calcium at high concentrations, which competed with other pollutants for the adsorption sites of the adsorbent.Entities:
Keywords: adsorption; alkylphenols; cyclodextrin; metals; polycyclic aromatic hydrocarbons
Year: 2016 PMID: 27829889 PMCID: PMC5082566 DOI: 10.3762/bjoc.12.172
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Figure 1Chemical structure of the non-activated polyBTCA-CD.
Figure 2Determination of the PZC for the non-activated and activated polyBTCA-CD polymers (pHi: initial pH value, see also Experimental section).
Figure 3XRD pattern of the two polymers: non-activated and activated polyBTCA-CD.
Figure 4CPMAS and MAS spectra of polyBTCA-CD.
Figure 5Adsorption capacity (%) of (a) the non-activated and (b) the activated (NaHCO3 treatment) polyBTCA-CD at different concentrations for five metals (at 10 mg·L−1 metal).
Figure 6Adsorption kinetics for two solutions containing five metals at two concentrations (solution at 10 mg·L−1: full lines; solution at 1 mg·L−1: dashed lines) expressed as removal efficiency in % (n = 3).
Efficiency of activated polyBTCA-CD expressed in % (concentration = 2 g·L−1) to treat several metal spiked solutions SS (n = 3). See Experimental section for the exact compositions of the spiked solutions SS.
| Al3+ | Co2+ | Cr3+ | Ni2+ | Zn2+ | Ca2+ | pHi | |
| SS1 | 87 ± 4 | >99 | 88 ± 3 | >99 | >99 | — | 6.2 |
| SS2 | 66 ± 4 | >99 | 36 ± 1 | >99 | >99 | — | 7.3 |
| SS3 | 87 ± 16 | >99 | 45 ± 7 | 99 ± 0 | >99 | — | 7.3 |
| SS4 | 95 ± 2 | >99 | 38 ± 2 | 99 ± 0 | >99 | — | 7.3 |
| SS5 | 97 ± 0 | 17 ± 2 | 85 ± 2 | 22 ± 2 | 41 ± 7 | 10 ± 4 | 4.7 |
Figure 7Removal efficiency (%) after treatment with activated polyBTCA-CD (concentration = 2 g·L−1) for (a) two concentrations of PAHs: low for SS6 and high for SS7 (n = 3) and (b) two concentrations of APs: low for SS8 (n = 3) and high for SS9 (n = 1) (4NP: 4-nonylphenol, 4nNP: 4-n-nonylphenol, 4tOP: 4-tert-octylphenol).
Removal efficiency expressed in % of metals, PAHs and APs in solutions containing either one family of substances or mixtures after treatment by polyBTCA-CD (concentration = 2 g·L−1, n = 3).
| metals | PAHs | APs | metals + PAHs | metals + APs | PAHs + APs | metals + PAHs + APs | ||
| metals | Al3+ | 66 ± 4 | — | — | 65 ± 14 | 63 ± 5 | — | 65 ± 5 |
| Co2+ | >99 | — | — | 99 ± 1 | 99 ± 1 | — | 99 ± 1 | |
| Cr3+ | 36 ± 1 | — | — | 28 ± 8 | 25 ± 13 | — | 24 ± 13 | |
| Ni2+ | >99 | — | — | 98 ± 2 | 98 ± 1 | — | 98 ± 1 | |
| Zn2+ | >99 | — | — | 96 ± 4 | 96 ± 4 | — | 96 ± 4 | |
| PAHs | light | — | 60 ± 7 | — | 63 ± 3 | — | 62 ± 8 | 62 ± 4 |
| heavy | — | 87 ± 8 | — | 81 ± 10 | — | 87 ± 3 | 89 ± 5 | |
| APs | 4NP | — | — | 80 ± 3 | — | 82 ± 7 | 80 ± 11 | 81 ± 1 |
| 4nNP | — | — | 89 ± 1 | — | 90 ± 2 | 85 ± 1 | 81 ± 2 | |
| 4tOP | — | — | 83 ± 3 | — | 86 ± 6 | 86 ± 6 | 82 ± 4 | |
| pHf | 7.3 | 7.6 | 8 | 7.7 | 7.7 | 7.7 | 7.9 | |
Average concentrations expressed in mg·L−1 and standard errors of the main elements present in the DWs (n = 5).
| Al3+ | Co2+ | Cr3+ | Ni2+ | Zn2+ | Ca2+ |
| 1.48 ± 0.54 | 1.70 ± 0.74 | 0.04 ± 0.03 | 0.25 ± 0.11 | 0.90 ± 0.50 | 690 ± 156 |
| Fe3+ | K+ | Mg2+ | Mn2+ | Sr2+ | |
| 0.23 ± 0.12 | 73.3 ± 6.56 | 2.84 ± 0.31 | 0.12 ± 0.1 | 0.24 ± 0.03 | |
Figure 8Removal efficiency (%) of inorganic elements after treatment of five DWs by polyBTCA-CD (concentrations = 2 g·L−1, n = 5).
Removal efficiency of inorganic elements (%) in DW according to polymer concentration.
| removal efficiency (%) | ||||||||||||
| polymer concentration (g·L−1) | Al3+ | Co2+ | Cr3+ | Ni2+ | Zn2+ | Ca2+ | Fe3+ | K+ | Mg2+ | Mn2+ | Sr2+ | pH |
| 5 | 81 | 27 | >98 | 37 | 62 | 34 | 63 | 44 | 4 | 0 | 32 | 5 |
| 10 | 85 | 39 | >98 | 47 | 69 | 57 | 71 | 42 | 9 | 35 | 56 | 5 |
| 15 | 88 | 46 | >98 | 42 | 74 | 74 | 69 | 40 | 13 | 55 | 72 | 5 |
| 20 | 88 | 52 | >98 | 47 | 74 | 86 | 70 | 36 | 22 | 72 | 84 | 5 |
Extensive analysis on raw and treated DW by polyBTCA-CD (concentration = 2 g·L−1).
| initial concentration | final concentration | removal (%) | ||
| physicochemical parameters (mg·L−1) | pH | 8 | 8 | — |
| BOD-5 | 60 | 56 | 7 | |
| COD | 847 | 325 | 62 | |
| hydrocarbon index C10-C40 | 0.8 | 0.2 | 75 | |
| total cyanide | 0.39 | 0.35 | 10 | |
| AOX | 1.6 | 0.9 | 42 | |
| nitrites | 121 | 105 | 13 | |
| Kjeldahl nitrogen | 44 | 30 | 31 | |
| total nitrogen | 200 | 182 | 9 | |
| inorganic elements (mg·L−1) | chloride | 3140 | 3010 | 4 |
| sulphate | 208 | 201 | 3 | |
| potassium | 98 | 94 | 4 | |
| calcium | 787 | 668 | 15 | |
| magnesium | 2.3 | 2.1 | 9 | |
| manganese | 0.11 | 0.09 | 17 | |
| sodium | 1666 | 1667 | — | |
| sulfur | 91 | 83 | 9 | |
| aluminum | 0.09 | 0.07 | 24 | |
| cobalt | 2.82 | 2.49 | 12 | |
| iron | 0.37 | 0.27 | 27 | |
| molybdenum | 0.07 | 0.06 | 9 | |
| nickel | 0.34 | 0.28 | 17 | |
| selenium | 0.1 | 0.09 | 10 | |
| strontium | 0.27 | 0.26 | 7 | |
| zinc | 0.9 | 0.5 | 44 | |
| organic substances (µg·L−1) | 1,2-dichloroethane | 1.2 | 0.7 | 42 |
| chloroform | 4.4 | 3.2 | 27 | |
| dichlorobromomethane | 0.8 | <0.5 | >38 | |
| 4- | 2.1 | 0.4 | 81 | |
| 4-nonylphenol | 0.3 | <0.1 | >66 | |
| monoethoxylate nonylphenol | 5.62 | 0.97 | 83 | |
| diethoxylate nonylphenol | 2.05 | 0.96 | 53 | |
| monoethoxylate octylphenol | 177 | 41 | 77 | |
| diethoxylate octylphenol | 177 | 130 | 27 | |
| 4- | 26 | 14 | 46 | |
Concentrations of metals and calcium expressed in mg·L−1 in the spiked solutions.
| Al3+ | Co2+ | Cr3+ | Ni2+ | Zn2+ | Ca2+ | pHi | |
| SS1 | 9.12 | 9.71 | 10.05 | 9.46 | 9.37 | <0.5 | 3.9 |
| SS2 | 0.91 | 0.97 | 1.01 | 0.95 | 0.94 | <0.5 | 4.4 |
| SS3 | 0.95 | 0.76 | 0.015 | 0.10 | 0.36 | <0.5 | 4.8 |
| SS4 | 2.17 | 1.34 | 0.038 | 0.20 | 0.76 | <0.5 | 4.8 |
| SS5 | 2.26 | 1.33 | 0.035 | 0.20 | 0.75 | 457 | 4.7 |