Preparation of MCS from Low-Grade Bauxite Desilication Lye and Adsorption of Heavy Metals
Abstract
:1. Introduction
2. Experimental
2.1. Materials
2.2. Synthesis of MCS
2.3. Analytical Method
2.4. Adsorption Experiment
2.5. Isothermal Adsorption Model
2.5.1. Langmuir Model
2.5.2. Freundlich Model
2.6. Adsorption Kinetics
- (1)
- Pseudo-first-order model adsorption kinetics model.
- (2)
- Modified pseudo-first-order model dynamics: The modified pseudo-first-order model kinetic model is obtained by transforming the rate constant in the Equation (6). K1(min−1) is the rate constant of the modified equation of the pseudo-first-order model dynamics model [26].
- (3)
3. Results
3.1. Effect of Operation Parameters
3.2. Characterization of MCS
3.3. Isothermal Adsorption Mode
3.4. Adsorption Kinetics Study
3.5. Effect of Ionic Strength on Adsorbent
3.6. Elution, Recycling, and Recovery of Adsorbed Heavy Metals
4. Discussion
5. Conclusions
- The MCS had high adsorption capacity for Cu2+ and Pb2+ when the adsorption solution was pH = 4~6, with Pb2+ (1921.506 mg/g) > Cu2+ (561.885 mg/g). It was found that the lower pH inhibited the adsorption of heavy metal ions from the solution by the adsorbent. The final adsorption conditions for Cu2+ and Pb2+ were pH = 4, with an adsorption temperature of 303 K. The adsorption rates of Cu2+ and Pb2+ after 24 h were 99.51% and 99.74%, respectively.
- The kinetic adsorption of Cu and Pb ions by MCS was calculated to be more in line with the quasi-secondary kinetic model. The adsorption capacity of Cu2+ and Pb2+ was related to the initial solution concentration, which was 600 mg/L > 400 mg/L > 200 mg/L. The results showed that the adsorption of Cu2+ and Pb2+ by MCS was mainly chemisorption. During the adsorption process, heavy metal ions form chemical bonds by sharing or exchanging electrons and attach to the MCS surface.
- Based on the calculations of the isothermal adsorption models for Cu2+ and Pb2+ by MCS, it was proposed that the adsorption of Cu2+ and Pb2+ by MCS was not limited to monolayer adsorption. It has been demonstrated that an increase in the adsorption temperature promotes the adsorption of Cu2+ and Pb2+ from MCS with a maximum adsorption capacity of qm(Pb) > qm(Cu). According to the Freundlich isotherm, the n value for Pb is higher than that for Cu, indicating that the adsorption of Pb2+ by MCS is greater than that of Cu2+.
- By adjusting the background electrolyte NaNO3 concentration, it was found that the background electrolyte had no effect on the over-sorption process during the adsorption of Cu2+ and Pb2+ by MCS.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Langmuir Equation | ||||
Name | T (K) | qm (mg/g) | KL (L/mg) | R2 |
MCS-Cu | 293 | 487.622 | 1.407 | 0.975 |
303 | 525.947 | 1.278 | 0.982 | |
313 | 561.885 | 1.485 | 0.987 | |
Freundlich equation | ||||
Name | T (K) | KF(mg/g)(L/mg)1/n | n | R2 |
MCS−Cu | 293 | 321.234 | 13.774 | 0.997 |
303 | 322.938 | 11.407 | 0.999 | |
313 | 332.606 | 11.123 | 1.000 |
Langmuir Equation | ||||
Name | T (K) | qm (mg/g) | KL (L/mg) | R2 |
MCS−Pb | 293 | 1827.013 | 1.071 | 0.617 |
303 | 1879.031 | 4.723 | 0.657 | |
313 | 1921.506 | 6.643 | 0.676 | |
Freundlich equation | ||||
Name | T (K) | KL (mg/g)(L/mg)1/n | n | R2 |
MCS−Pb | 293 | 1194.354 | 12.918 | 0.993 |
303 | 1269.236 | 13.612 | 0.981 | |
313 | 1293.008 | 13.367 | 0.978 |
Model | Parameters | Cu2+ | Pb2+ | ||||
---|---|---|---|---|---|---|---|
200 mg/L | 400 mg/L | 600 mg/L | 200 mg/L | 400 mg/L | 600 mg/L | ||
Pseudo-first-order model | R2 | 0.956 | 0.731 | 0.935 | 0.766 | 0.640 | 0.721 |
k1 | 169 × 10−3 | 37.8 × 10−3 | 48.8 × 10−3 | 35.6 × 10−3 | 55.1 × 10−3 | 69.9 × 10−3 | |
qe (cal) | 329.725 | 463.319 | 528.238 | 1269.23 | 1775.172 | 1907.849 | |
Pseudo-second-order model | R2 | 0.997 | 0.951 | 0.974 | 0.932 | 0.938 | 0.968 |
k2 | 0.858 × 10−3 | 0.148 × 10−3 | 0.216 × 10−3 | 0.046 × 10−3 | 0.071 × 10−3 | 0.112 × 10−3 | |
qe (cal) | 336.386 | 481.484 | 541.352 | 1325.538 | 1822.337 | 1940.063 |
Items | Cu2+ | Pb2+ |
---|---|---|
Elution ration (%) | 99.87 | 99.95 |
Recovery ratio (%) | 99.64 | 99.78 |
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Chen, C.; Chen, C.; Li, J.; Wang, G.; Lin, X.; Ning, D. Preparation of MCS from Low-Grade Bauxite Desilication Lye and Adsorption of Heavy Metals. Materials 2023, 16, 3506. https://doi.org/10.3390/ma16093506
Chen C, Chen C, Li J, Wang G, Lin X, Ning D. Preparation of MCS from Low-Grade Bauxite Desilication Lye and Adsorption of Heavy Metals. Materials. 2023; 16(9):3506. https://doi.org/10.3390/ma16093506
Chicago/Turabian StyleChen, Cheng, Chaoyi Chen, Junqi Li, Gangan Wang, Xin Lin, and Deyang Ning. 2023. "Preparation of MCS from Low-Grade Bauxite Desilication Lye and Adsorption of Heavy Metals" Materials 16, no. 9: 3506. https://doi.org/10.3390/ma16093506
APA StyleChen, C., Chen, C., Li, J., Wang, G., Lin, X., & Ning, D. (2023). Preparation of MCS from Low-Grade Bauxite Desilication Lye and Adsorption of Heavy Metals. Materials, 16(9), 3506. https://doi.org/10.3390/ma16093506