| Literature DB >> 28993628 |
Rajeev Kumar1, M A Barakat2,3, F A Alseroury4.
Abstract
Nanomaterials with selective adsorption properties are in demand for environmental applications. Herein, acid etching and oxidative decomposition of melon units of <Entities:
Year: 2017 PMID: 28993628 PMCID: PMC5634480 DOI: 10.1038/s41598-017-12850-1
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Schematic illustration for Ox-g-C3N4/Pani-NF composite synthesis.
Figure 2TEM images of Ox-g-C3N4/Pani-NF composite.
Figure 3XRD pattern of g-C3N4, Ox-g-C3N4, Pani-NF and Ox-g-C3N4/Pani-NF composite.
Figure 4XPS analysis data for Ox-g-C3N4 and Ox-g-C3N4/Pani-NF composite, respectively. (a,b) O 1 s (c,d) C 1 s and (e,f) N 1 s.
Figure 5FTIR spectra for pristine g-C3N4, Ox-g-C3N4, Pani-NF and Ox-g-C3N4/Pani-NF composite.
Figure 6(a) Zeta potential and (b) effect of solution pH for Cr(VI) adsorption on -C3N4, Ox-g-C3N4, Pani-NF and Ox-g-C3N4/Pani-NF composite.
Figure 7Effect of reaction time and temperature on the removal of Cr(VI) by Ox-g-C3N4/Pani-NF composite. (conc. -200 mg/L, pH-2.03, Vol. -25 ml, adsorbent mass- 0.015 g).
Kinetics parameter for adsorption of Cr(VI) onto the Ox-g-C3N4/Pani-NF composite.
| Pseudo First order model | Pseudo Second order model | ||||||
|---|---|---|---|---|---|---|---|
| Temp. °C | qe exp (mg g−1) | qe cal (mg g−1) | K1 (min−1) | R2 | qe cal (mg/g) | K2 (g/mg min) | R2 |
| 30 | 171.431 | 117.760 | 2.487 × 10−2 | 0.954 | 181.185 | 4.044 × 10−4 | 0.998 |
| 40 | 179.928 | 111.866 | 2.303 × 10−2 | 0.960 | 196.078 | 3.941 × 10−4 | 0.998 |
| 50 | 205.928 | 137.911 | 2.326 × 10−2 | 0.989 | 217.391 | 3.265 × 10−4 | 0.999 |
Figure 8Effect of initial concentration of Cr(VI) on its adsorption onto Ox-g-C3N4/Pani-NF composite. (time- 210 min, temp. -30 °C, pH-2.03, Vol. -25 ml, adsorbent mass- 0.015 g).
The Maximum adsorption capacity of various adsorbents used for the removal of Cr(VI).
| Adsorbent | Adsorption capacity (mg/g) | Experimental conditions | Ref. | |||||
|---|---|---|---|---|---|---|---|---|
| pH | Conc. (mg/L) | Vol. (ml) | Temp. (°C) | Time (h) | Dose (g) | |||
| Ox-g-C3N4/polyaniline-NF | 178.57 | 2 | 25–300 | 25 | 30 | 3 | 0.015 | This study |
| Rice husk | 31.1 | 6 | 50–200 | 10 | 25 | 48 | 0.1 |
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| Polyaniline | 122.2 | 4.5 | 100–400 | 25 | 30 | 3 | 0.05 |
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| Kapok fiber/polyaniline | 65.65 | 4.5 | — | 25 | 30 | 3 | 0.05 |
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| Fe3O4@SiO2–mPD/SP | 158.73 | — | 50–275 | — | 30 | 24 | 1.0 |
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| DBSA-Polyaniline/MWCNTs | 55.55 | 2 | 20–140 | 15 | 30 | 10 | 0.02 |
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| Bamboo charcoal grafted by Cu2+-N-aminopropylsilane | 17.938 | 2–12 | 50 | 30 | 4 | 0.1 |
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| Amino functionalized GO/Fe3O4 | 123.4 | 2 | — | — | 20 | 12 | 0.2 |
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| copper-benzenetricarboxylates | 48 | 7 | 10–40 | 10 | 25 | — | 0.005 |
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| polyaniline/palygorskite | 16.22 | 5.5 | 2.5–35 | 40 | 35 | 24 | 0.02 |
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| Longan seed activated carbon | 169.49 | 3 | 50–500 | 50 | 25.2 | 6 | 0.1 |
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