| 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 class="Chemical">graphitic carbon nitride (<class="Chemical">span class="Chemical">g-C3N4) was performed to obtain the oxidized graphitic carbon nitride (Ox-g-C3N4) nanosheets. Ox- g-C3N4 nanosheets were further decorated on the polyaniline nanofiber (Ox-g-C3N4/Pani-NF). Ox-g-C3N4/Pani-NF was well characterized and further applied for a selective removal of hexavalent chromium (Cr(VI)) form aqueous solution. The zeta potential analysis indicate that the surface of Ox-g-C3N4/Pani-NF was positively charged which could be beneficial to bind anionic Cr(VI) ions electrostatically. In addition, nitrogen and oxygen containing functional groups exist on the Ox-g-C3N4/Pani-NF were mainly responsible for adsorption of Cr(VI) ions from aqueous solution. Moreover, the adsorption of Cr(VI) ions was also dependent on solution pH, reaction temperature and initial concentration of Cr(VI) ions. The maximum monolayer adsorption capacity of Ox-g-C3N4/Pani-NF for Cr(VI), calculated from Langmuir isotherm was 178.57 mg/g at pH = 2 and 30 °C. The activation energy (Ea = -20.66 kJ/mol) and the enthalpy change (ΔH° = -22.055 kJ/mol) validate the role of physical forces in adsorption of Cr(VI). These results demonstrate that Ox-g-C3N4/Pani-NF can be used as a potential adsorbent for environmental remediation applications.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 |
| |
| 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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