| Literature DB >> 31193010 |
Hassan Ouallal1,2, Younes Dehmani3, Hamou Moussout3, Lahcen Messaoudi2, Mohamed Azrour1.
Abstract
In this work, the phenols removal of phenol from water by raw clay (RCG) and calcined one at 1000 °C (CCG) of Goulmima city (Morocco) was investigated. The kinetics and isotherms experiments were also studied at pH = 4. The results indicated that the phenol adsorption reached equilibrium within 3 h, and the removal of phenol was enhanced at the same temperature by CCG (2.932 mg/g) adsorbent, compared to RCG (1.640 mg/g) due to the removal of organic matter by heat treatment, and an increase in adsorption temperature, indicating the endothermic process. The adsorbents were characterized by means of X-ray fluorescence, FTIR, XRD, B.E.T, and TGA/DTA analysis and showed that the clay consists essentially of silica and alumina. The experimental data were examined by using linear and nonlinear forms of the kinetics and the isotherms models. Based on the errors of the calculated values of R2 (Coefficient of determination), χ2 (Chi-square) and standard deviation (Δq (%)), it was found that the nonlinear forms of second-order kinetic model and Freundlich and Redlich-Peterson (R-P) isotherm models are best fit the experimental data for both adsorbents. However, the enthalpy ΔH° is less than 20 kJ/mol and the free energy ΔG° has a negative value, which shows that the adsorption is done physically and spontaneously on heterogeneous sites. The interest of this study is the use of FTIR and XRD to determine the effect of calcination on the phenol adsorption mechanism. However, the analysis of both adsorbents, before and after adsorption of phenol, shows that the adsorption mechanism of phenol is provided by the hydrogen bonding of the water molecules.Entities:
Keywords: Chemical engineering; Environmental science; Inorganic chemistry; Materials chemistry; Physical chemistry
Year: 2019 PMID: 31193010 PMCID: PMC6512880 DOI: 10.1016/j.heliyon.2019.e01616
Source DB: PubMed Journal: Heliyon ISSN: 2405-8440
Chemical composition of RCG and CCG.
| Oxides | SiO2 | Al2O3 | CaO | MgO | Fe2O3 | K2O | Na2O | TiO2 | LOI | |
|---|---|---|---|---|---|---|---|---|---|---|
| (% mass) | RCG | 34.1 | 10.5 | 22.1 | 2.6 | 3.03 | 1.51 | 0.454 | 0.443 | 24.8 |
| CCG | 54.15 | 26.23 | 1.25 | 2.00 | 1.90 | 0.70 | 3.08 | 1.39 | 9.30 | |
Fig. 1FTIR spectra of RCG (a) and CCG (b).
Fig. 2XRD patterns of RCG (a) and CCG (b).
Fig. 3TGA/DTA thermograms of RCG (a) and CCG (b).
Fig. 4N2 adsorption/desorption isotherms of RCG (a) and CCG (b).
Textural characteristics of RCG and CCG.
| B.E.T | |||
|---|---|---|---|
| Specific surface (m2/g) | Volume (cm3/g) | Diameter (Å) | |
| RCG | 25.351 | 0.034 | 38.36 |
| CCG | 62.205 | 0.094 | 53.25 |
Fig. 5pHpzc of RCG (a) and CCG(b).
Fig. 6Adsorption kinetics with nonlinear models of pseudo-first order and pseudo-second order of phenol (C0 = 30 mg/l) onto RCG and CCG at pH = 4.
Kinetic parameters of linear and nonlinear modeling of phenol adsorption at different temperatures onto RCG and CCG.
| Sample | RCG | CCG | |||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Linear equations | Nonlinear equations | Linear equations | Nonlinear equations | ||||||||||
| Models | qexp (mg/g) | 1.001 | 1.112 | 1.640 | 1.001 | 1.112 | 1.640 | 1.115 | 1.239 | 2.932 | 1.115 | 1.239 | 2.932 |
| T (°C) | 20 | 40 | 60 | 20 | 40 | 60 | 20 | 40 | 60 | 20 | 40 | 60 | |
| LPFO | qe (mg/g) | 8.479 | 8.346 | 8.397 | 0.902 | 1.073 | 1.635 | 8.554 | 8.486 | 6.791 | 1.149 | 1.235 | 2.849 |
| k1 (min−1) | 3.083E-04 | 3.300E-04 | 6.391E-04 | 0.034 | 0.388 | 0.017 | 4.385E-04 | 4.637E-04 | 6.446E-04 | 0.017 | 0.019 | 0.143 | |
| Δq (%) | 1.011 | 1.014 | 1.016 | 0.041 | 0.024 | 0.037 | 1.015 | 1.014 | 1.052 | 0.047 | 0.019 | 0.039 | |
| χ2 | 0.004 | 0.007 | 0.010 | 0.007 | 0.003 | 0.003 | 0.008 | 0.008 | 9534.000 | 0.005 | 0.001 | 0.010 | |
| 0.685 | 0.595 | 0.800 | 0.940 | 0.983 | 0.992 | 0.690 | 0.734 | 0.297 | 0.978 | 0.996 | 0.988 | ||
| LPSO | qe (mg/g) | 1.082 | 1.164 | 1.982 | 1.002 | 1.177 | 1.997 | 1.519 | 1.506 | 2.974 | 1.437 | 1.475 | 2.932 |
| k2 (g/mg.min) | 0.030 | 0.062 | 0.079 | 0.049 | 0.051 | 0.065 | 0.008 | 0.012 | 0.034 | 0.012 | 0.015 | 0.102 | |
| Δq (%) | 0.027 | 0.017 | 0.011 | 0.002 | 0.002 | 0.004 | 0.073 | 0.030 | 0.001 | 0.127 | 0.003 | 0.003 | |
| χ2 | 0.002 | 0.001 | 0.002 | 0.001 | 0.001 | 0.001 | 0.003 | 0.005 | 1.217 | 0.010 | 0.001 | 0.065 | |
| 0.994 | 0.997 | 0.997 | 0.972 | 0.988 | 0.991 | 0.922 | 0.986 | 1.000 | 0.956 | 0.989 | 0.931 | ||
Fig. 7Intra-particle diffusion model for phenol adsorption onto RCG and CCG.
Parameters of the intra-particle diffusion model equations.
| Sample | T (°C) | Step 1 | Step 2 | ||||||
|---|---|---|---|---|---|---|---|---|---|
| kd1 (mg/g).min−1 | C 1 | SD | kd2 (mg/g).min−1 | C 2 | SD | ||||
| RCG | 20 | 0.115 | −0.028 | 0.917 | 0.020 | 0.028 | 0.513 | 0.973 | 0.002 |
| 40 | 0.121 | 0.030 | 0.991 | 0.004 | 0.018 | 0.822 | 0.893 | 0.003 | |
| 60 | 0.124 | −0.010 | 0.983 | 0.037 | 0.023 | 1.249 | 0.808 | 0.001 | |
| CCG | 20 | 0.114 | −0.153 | 0.918 | 0.066 | 0.011 | 0.919 | 0.955 | 0.0002 |
| 40 | 0.111 | −0.068 | 0.979 | 0.023 | 0.015 | 0.989 | 0.966 | 0.0002 | |
| 60 | 0.509 | 0.199 | 0.928 | 0.342 | 0.024 | 2.575 | 0.764 | 0.019 | |
Fig. 8Adsorption isotherms of the phenol onto RCG and CCG at different temperatures with non-linear fit of Langmuir, Freundlich and Redlich-Peterson models.
Model parameters for the adsorption of phenol on RCG and CCG at different temperatures.
| Sample | RCG | CCG | |||||
|---|---|---|---|---|---|---|---|
| Model | T (°C) | 20 | 40 | 60 | 20 | 40 | 60 |
| Langmuir | qm (mg/g) | 27.426 | 14.065 | 12.109 | 6.652 | 8.054 | 37.585 |
| KL (L/mg) | 0.045 | 0.107 | 0.142 | 0.764 | 0.245 | 0.103 | |
| R2 | 0.981 | 0.989 | 0.968 | 0.922 | 0.990 | 0.992 | |
| χ2 | 0.054 | 0.030 | 0.094 | 0.244 | 0.027 | 0.026 | |
| Freundlich | KF (mg/g) | 1.193 | 1.387 | 1.525 | 2.706 | 3.141 | 3.478 |
| 1/n | 0.914 | 0.804 | 0.767 | 0.494 | 0.626 | 0.936 | |
| R2 | 0.976 | 0.980 | 0.952 | 0.854 | 0.964 | 0.989 | |
| χ2 | 0.068 | 0.056 | 0.142 | 0.457 | 0.095 | 0.034 | |
| Redlich-Peterson | KP-R | 1.231E-10 | 0.005 | 0.005 | 0.163 | 0.048 | 0.011 |
| A | 1.148 | 1.286 | 1.431 | 3.476 | 1.553 | 3.627 | |
| β | 13.822 | 2.662 | 2.942 | 1.872 | 1.724 | 5.583 | |
| R2 | 0.994 | 0.995 | 0.982 | 0.959 | 0.997 | 0.995 | |
| χ2 | 0.027 | 0.005 | 0.005 | 0.190 | 0.012 | 0.023 | |
Thermodynamic parameters for adsorption of phenol onto RCG and CCG.
| T (°C) | ΔS° (J/K, mol) | ΔH° (kJ/mol) | ΔG° (kJ/mol) | R2 | |
|---|---|---|---|---|---|
| RCG | 20 | 18.572 | 4.996 | −0.445 | 0.991 |
| 40 | −0.817 | ||||
| 60 | −1.188 | ||||
| CCG | 20 | 25.734 | 5.103 | −2.437 | 0.995 |
| 40 | −2.951 | ||||
| 60 | −3.466 |
Fig. 9FTIR spectra of RCG (a) and CCG (b) before and after adsorption of phenol.
Fig. 10XRD patterns of RCG and CCG before and after adsorption of phenol.