| Literature DB >> 28793430 |
Muhammad Imran Khan1,2, Shahbaz Akhtar3, Shagufta Zafar4, Aqeela Shaheen5, Muhammad Ali Khan6, Rafael Luque7, Aziz Ur Rehman8.
Abstract
The adsorption behavior of anionic dye congo red (CR) from aqueous solutions using an anion exchange membrane (EBTAC) has been investigated at room temperature. The effect of several factors including contact time, membrane dosage, ionic strength and temperature were studied. Kinetic models, namely pseudo-first-order and pseudo-second-order, liquid film diffusion and Elovich models as well as Bangham and modified freundlich Equations, were employed to evaluate the experimental results. Parameters such as adsorption capacities, rate constant and related correlation coefficients for every model were calculated and discussed. The adsorption of CR on anion exchange membranes followed pseudo-second-order Kinetics. Thermodynamic parameters, namely changes in Gibbs free energy (∆G°), enthalpy (∆H°) and entropy (∆S°) were calculated for the adsorption of congo red, indicating an exothermic process.Entities:
Keywords: Kinetics; adsorption; anion exchange membrane; congo red; thermodynamics
Year: 2015 PMID: 28793430 PMCID: PMC5455645 DOI: 10.3390/ma8074147
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Structural formula of congo red (CR) dye.
Figure 2Effect of contact time on the removal (%) of congo red using anion exchange membrane EBTAC.
Figure 3Effect of membrane dosage on the removal (%) of congo red using an anion exchange membrane EBTAC.
Figure 4Effect of ìonic strength on the removal (%) of congo red using EBTAC.
Figure 5Effect of temperature on the removal (%) of congo red by anion exchange membrane EBTAC.
Figure 6Pseudo-first-order Kinetics for adsorption of congo red on anion exchange membrane EBTAC.
Kinetic parameters for the effect of concentration on the adsorption of CR onto anion exchange membrane (EBTAC).
| Concentration (mg/L) | 25 | 50 |
|---|---|---|
| 9.64 | 19.12 | |
| Pseudo-first-order model | ||
| 7.46 | 16.41 | |
| k1 (×10−3 min−1) | 0.85 | 1.20 |
| R2 | 0.896 | 0.970 |
| Pseudo-second-order model | ||
| 11.01 | 21.73 | |
| k1 (×10−4 g mg−1 min−1) | 4.10 | 2.70 |
| R2 | 0.991 | 0.992 |
| Liquid film diffusion model | ||
| Kfd (×10−3 min−1) | 1.96 | 2.69 |
| Cfd | −0.193 | −0.153 |
| R2 | 0.897 | 0.970 |
| Elovich model | ||
| α (mg g−1 min−1) | 8.94 | 3.74 |
| β (g mg−1) | 0.48 | 0.24 |
| R2 | 0.917 | 0.951 |
| The Bangham equation | ||
| Ko (mL/(g/L)) | 0.53 | 0.91 |
| α | 0.48 | 0.40 |
| R2 | 0.884 | 0.971 |
| The modified Freundlich equation | ||
| m | 2.12 | 2.54 |
| K (L/g min) | 0.014 | 0.028 |
| R2 | 0.883 | 0.971 |
Figure 7Pseudo-second-order Kinetics for adsorption of congo red on anion exchange membrane EBTAC.
Figure 8Liquid film diffusion model for adsorption of congo red on anion exchange membrane EBTAC.
Figure 9Elovich model for adsorption of congo red on anion exchange membrane EBTAC.
Figure 10Banghamʼs plot of loglog(Co/Co-qtm) vs. logt for adsorption of congo red on anion exchange membrane EBTAC.
Figure 11The modified Freundlich plot of lnt vs. ln qt for adsorption of congo red on anion exchange membrane EBTAC.
Figure 12Plot of lnkc verses 1/T for congo red dye on anion exchange membrane EBTAC.
Thermodynamic parameters for adsorption of CR on anion exchange membrane EBTAC.
| Co (mg/L) | ∆H (KJ mol−1) | ∆S (J mol−1) | ∆G (KJ mol−1) | ||
|---|---|---|---|---|---|
| 293 K | 313 K | 323 K | |||
| 25 | −17.70 | −27.01 | 7.90 | 8.44 | 8.71 |
| 50 | −22.76 | −51.85 | 15.16 | 16.21 | 16.72 |