| Literature DB >> 28809214 |
George Z Kyzas1,2, Nikolina A Travlou3, Orestis Kalogirou4, Eleni A Deliyanni5.
Abstract
In this study, the effect of preparation route of magnetic graphene oxide (mGO) on Reactive Black 5 (RB5) adsorption was investigated. The synthesis of mGO was achieved both with (i) impregnation method (mGOi nanoparticles), and (ii) co-precipitation (mGOp nanoparticles). After synthesis, the full characterization with various techniques (SEM, FTIR, XRD, DTA, DTG, VSM) was achieved revealing many possible interactions/forces of dye-composite system. Effects of initial solution pH, effect of temperature, adsorption isotherms and kinetics were investigated in order to conclude about the aforementioned effect of the preparation method on dye adsorption performance of the magnetic nanocomposites. The adsorption evaluation of the magnetic nanoparticles presented higher adsorption capacity of mGOp derivative (188 mg/g) and lower of mGOi (164 mg/g). Equilibrium experiments are also performed studying the effect of contact time (pseudo-first and -second order equations) and temperature (isotherms at 25, 45 and 65 °C fitted to Langmuir and Freundlich model). A full thermodynamic evaluation was carried out, calculating the parameters of enthalpy, free energy and entropy (ΔH⁰, ΔG⁰ and ΔS⁰).Entities:
Keywords: adsorption; co-precipitation; impregnation; magnetic graphene oxide; preparation; reactive dye
Year: 2013 PMID: 28809214 PMCID: PMC5452327 DOI: 10.3390/ma6041360
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Chemical structures of Reactive Black 5 (RB5).
Figure 2X-ray diffraction (XRD) patterns of mGOi and mGOp (Inset: XRD patterns of GO and G).
Figure 3(a) SEM image of mGOi; (b) iron distribution map of mGOi.
Figure 4Differential thermogravimetry (DTG) curves in nitrogen.
Figure 5Differential thermal analysis (DTA) curves in nitrogen.
Figure 6VSM plot of mGOi and mGOp (Inset: photo of mGOp).
Figure 7FT–IR spectra of: (A) GO; (B) GO dye–loaded; (C) mGOi; (D) mGOi dye-loaded; (E) mGOp; (F) mGOp dye–loaded.
Figure 8Effect of contact time on RB5 removal.
Kinetic constants for RB5 removal with mGOi and mGOp at 25 °C.
| Adsorbent | Pseudo–first order | Pseudo–second order | ||
|---|---|---|---|---|
| k1 (min−1) | R2 | k2 (min−1) | R2 | |
| mGOi | 0.072 | 0.915 | 0.143 | 0.990 |
| mGOp | 0.029 | 0.954 | 0.064 | 0.991 |
Figure 9Isotherms of the adsorption of RB5 onto (a) mGOi and (b) mGOp.
Equilibrium parameters for the adsorption of RB5 onto mGOi and mGOp at 25, 45 and 65 °C.
| Adsorbents | Langmuir equation | Freundlich equation | |||||
|---|---|---|---|---|---|---|---|
| T (°C) | Qmax (mg/g) | KL (L/mg) | R2 | KF (mg(n−1)/n L1/n g−1) | R2 | ||
| mGOi | 25 | 164 | 0.007 | 0.989 | 4.55 | 0.58 | 0.960 |
| 45 | 124 | 0.008 | 0.993 | 4.13 | 0.55 | 0.970 | |
| 65 | 118 | 0.004 | 0.990 | 1.24 | 0.71 | 0.973 | |
| mGOp | 25 | 188 | 0.007 | 0.991 | 4.24 | 0.63 | 0.966 |
| 45 | 186 | 0.004 | 0.995 | 2.17 | 0.69 | 0.988 | |
| 65 | 178 | 0.002 | 0.999 | 0.84 | 0.80 | 0.995 | |
Thermodynamic parameters for the adsorption of RB5 onto mGOi and mGOp.
| Adsorbent | Qe (mg/g) | ΔG0 (kJ/mol) | ΔH0 (kJ/mol) | ΔS0 (kJ/mol K) | |||
|---|---|---|---|---|---|---|---|
| mGOi | 40 | 298 | 18.02 | 0.82 | -0.50 | -24.83 | -0.085 |
| 318 | 12.01 | 0.43 | -2.24 | ||||
| 338 | 8.09 | 0.25 | -3.90 | ||||
| 100 | 298 | 48.56 | 0.92 | -0.20 | -23.54 | -0.071 | |
| 318 | 40.75 | 0.67 | -1.07 | ||||
| 338 | 25.41 | 0.33 | -3.09 | ||||
| 300 | 298 | 130.02 | 0.76 | -0.66 | -21.13 | -0.082 | |
| 318 | 79.99 | 0.36 | -2.67 | ||||
| 338 | 60.01 | 0.25 | -3.90 | ||||
| mGOp | 20 | 298 | 22.02 | 1.22 | -0.50 | -27.04 | -0.089 |
| 318 | 17.09 | 0.74 | -0.80 | ||||
| 338 | 10.08 | 0.33 | -3.09 | ||||
| 80 | 298 | 52.10 | 1.08 | -0.20 | -20.32 | -0.067 | |
| 318 | 42.12 | 0.72 | -0.85 | ||||
| 338 | 29.03 | 0.41 | -2.52 | ||||
| 300 | 298 | 145.62 | 0.94 | -0.17 | -19.31 | -0.068 | |
| 318 | 95.58 | 0.46 | -2.03 | ||||
| 338 | 81.04 | 0.37 | -2.80 |