Evaluation of Almond Shell Activated Carbon for Dye (Methylene Blue and Malachite Green) Removal by Experimental and Simulation Studies
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials and Chemicals
2.2. Adsorbent Fabrication
2.3. Adsorbent Characterization
2.4. Batch Adsorption Experiments
2.5. Adsorption Kinetics
2.6. Adsorption Isotherms
2.7. Packed Bed Adsorption Simulation
3. Results
3.1. Adsorbent Characterization
3.2. Dye Adsorption Studies
3.2.1. Effect of Adsorbent Dosage and Initial Dye Concentration
3.2.2. Adsorption Kinetics
3.2.3. Adsorption Equilibrium
3.3. Simulation of Dyes Adsorption in a Packed-Bed
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Parameter | Non-Activated Carbon | Activated Carbon |
---|---|---|
Surface area (m2/g) N2 at 77 K (BET) | 294 ± 7 | 1577 ± 13 |
Average pore size (Å) N2 at 77 K (BET) | 21.8 | 17.7 |
Surface area (m2/g) CO2 at 273 K (BET) | 268 ± 1 | 772 ± 12 |
Total pore volume (cm3/g) at P/Po = 0.99 | 0.161 | 0.697 |
Microporosity (%) | 92.7 | 78.2 |
Kinetic Model | Parameter | Methylene Blue | Malachite Green |
---|---|---|---|
C0 = 50 mg·L−1 | |||
Adsorption half-time | t1/2 (min) | 10.9 | 13.8 |
Pseudo-second-order | qe (mg·g−1) | 100.4 | 104.0 |
k2 (g·mg−1·min−1) | 9.16·10−4 | 6.96·10−4 | |
R2 | 0.9998 | 0.9998 | |
Intraparticle diffusion | kid,1 (mg·g−1·min0.5) | 11.87 | 14.68 |
C1 (mg·g−1) | 7.55 | 1.77 | |
R2 | 0.9243 | 0.9753 | |
kid,2 (mg·g−1·min0.5) | 0.286 | 3.02 | |
C2 (mg·g−1) | 93.03 | 53.14 | |
R2 | 0.6673 | 0.9075 | |
kid,3 (mg·g−1·min0.5) | - | 0.273 | |
C3 (mg·g−1) | - | 93.41 | |
R2 | - | 0.8709 | |
C0 = 250 mg·L−1 | |||
Adsorption half-time | t1/2 (min) | 86.5 | 150.1 |
Pseudo-second-order | qe (mg·g−1) | 441.1 | 378.6 |
k2 (g·mg−1·min−1) | 2.62·10−5 | 1.76·10−5 | |
R2 | 0.9880 | 0.9747 | |
Intraparticle diffusion | kid,1 (mg·g−1·min0.5) | 35.85 | 13.02 |
C1 (mg·g−1) | 1.69 | 13.12 | |
R2 | 0.9974 | 0.9619 | |
kid,2 (mg·g−1·min0.5) | 7.65 | 7.55 | |
C2 (mg·g−1) | 148.3 | 73.23 | |
R2 | 0.9640 | 0.9769 | |
kid,3 (mg·g−1·min0.5) | - | - | |
C3 (mg·g−1) | - | - | |
R2 | - | - | |
C0 = 500 mg·L−1 | |||
Adsorption half-time | t1/2 (min) | 327.1 | 189.2 |
Pseudo-second-order | qe (mg·g−1) | 551.9 | 343.2 |
k2 (g·mg−1·min−1) | 5.54·10−6 | 1.54·10−5 | |
R2 | 0.9966 | 0.9933 | |
Intraparticle diffusion | kid,1 (mg·g−1·min0.5) | 10.43 | 11.46 |
C1 (mg·g−1) | 22.47 | 20.48 | |
R2 | 0.9397 | 0.8573 | |
kid,2 (mg·g−1·min0.5) | 1.25 | 3.31 | |
C2 (mg·g−1) | 419.7 | 205.9 | |
R2 | 0.7235 | 0.9763 | |
kid,3 (mg·g−1·min0.5) | - | - | |
C3 (mg·g−1) | - | - | |
R2 | - | - |
Equilibrium Model | Parameter | Methylene Blue | Malachite Green |
---|---|---|---|
Langmuir | qm,L (mg·g−1) | 341.3 | 363.6 |
kL (L·mg−1) | 2.64 | 0.15 | |
R2 | 0.989 | 0.982 | |
Freundlich | N | 7.9 | 3.6 |
kF (mg·g−1·(L·mg−1)−1/n) | 217.0 | 103.5 | |
R2 | 0.896 | 0.998 | |
Temkin | BT (J·mol−1) | 26.4 | 53.2 |
kT (L·mg−1) | 9514.8 | 6.3 | |
R2 | 0.910 | 0.948 | |
Dubinin–Radushkevich | qm,DR (mg·g−1) | 314.2 | 257.6 |
kDR (mol2·kJ−2) | 8.54·10−9 | 1.83·10−7 | |
R2 | 0.919 | 0.730 |
Precursor Material | Dye | Capacity (mg·g−1) | S/L (g·L−1) | Reference |
---|---|---|---|---|
Almond shell | MB | 341 | 0.5 | This work |
Walnut shell | MB | 247 | 0.5 | [4] |
Rubber seed pericarp | MB | 348 | 0.6 | [23] |
Oil palm frond and palm kernel shell | MB | 332 | 2.5 | [24] |
Sunflower pith | MB | 581 | 1.0 | [25] |
Chickpea peel | MB | 200 | 0.8 | [26] |
Sugarcane bagasse waste | MB | 142 | 5.0 | [27] |
Almond shell | MG | 364 | 0.5 | This work |
Charcoal | MG | 27 | 0.4 | [28] |
Pinus roxburghii cone | MG | 250 | 0.7 | [29] |
Walnut shell | MG | 155 | 0.6 | [30] |
Okra stalks | MG | 100 | 1.0 | [31] |
Hevea brasiliensis root | MG | 260 | 1.0 | [32] |
Peach pit | MG | 70 | 2.0 | [33] |
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Rial, A.; Pimentel, C.H.; Gómez-Díaz, D.; Freire, M.S.; González-Álvarez, J. Evaluation of Almond Shell Activated Carbon for Dye (Methylene Blue and Malachite Green) Removal by Experimental and Simulation Studies. Materials 2024, 17, 6077. https://doi.org/10.3390/ma17246077
Rial A, Pimentel CH, Gómez-Díaz D, Freire MS, González-Álvarez J. Evaluation of Almond Shell Activated Carbon for Dye (Methylene Blue and Malachite Green) Removal by Experimental and Simulation Studies. Materials. 2024; 17(24):6077. https://doi.org/10.3390/ma17246077
Chicago/Turabian StyleRial, Adrián, Catarina Helena Pimentel, Diego Gómez-Díaz, María Sonia Freire, and Julia González-Álvarez. 2024. "Evaluation of Almond Shell Activated Carbon for Dye (Methylene Blue and Malachite Green) Removal by Experimental and Simulation Studies" Materials 17, no. 24: 6077. https://doi.org/10.3390/ma17246077
APA StyleRial, A., Pimentel, C. H., Gómez-Díaz, D., Freire, M. S., & González-Álvarez, J. (2024). Evaluation of Almond Shell Activated Carbon for Dye (Methylene Blue and Malachite Green) Removal by Experimental and Simulation Studies. Materials, 17(24), 6077. https://doi.org/10.3390/ma17246077