Glutaraldehyde-Crosslinked Bovine Serum Albumin Hydrogels for Efficient Cu2+, Ni2+, and Co2+ Removal from Water
Abstract
1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Design of the Assembly for Fabricating BSA Hydrogels
2.3. Preparation of BSA Precursor Solutions
2.4. BSA Hydrogel Fabrication
2.5. Swelling and Stability Tests in Aqueous Media
2.6. Fourier Transform Infrared Spectroscopy (FT-IR)
2.7. Thermogravimetric Analysis (TGA)
2.8. Speciation Diagrams
2.9. Metal Removal Tests
2.10. Adsorption Isotherms
3. Results and Discussion
3.1. Preparation of BSA Hydrogels
3.2. Swelling and Stability Tests in Aqueous Medium
3.3. Fourier Transform Infrared Spectroscopy (FT-IR)
3.4. Thermogravimetric Analysis
3.5. Metal Removal Tests
3.6. Adsorption Isotherms
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Composition | Tonset | Tmax | T50 |
|---|---|---|---|
| 25% BSA + 0.8% GA | 286.272 | 308.958 | 88.285 |
| 25% BSA + 0.9% GA | 287.721 | 312.472 | 90.125 |
| 20% BSA + 0.9% GA | 282.309 | 324.063 | 81.53 |
| Metal Ion | Concentration (ppm) | % Rmax 1 | |
|---|---|---|---|
| 25% BSA | 20% BSA | ||
| Cu2+ | 50 | 99.258 | 97.865 |
| 100 | 95.758 | 94.462 | |
| Ni2+ | 50 | 80.733 | 72.015 |
| 100 | 69.559 | 67.931 | |
| Co2+ | 70 | 76.070 | 72.232 |
| 100 | 77.090 | 76.324 | |
| Metal Ion | Langmuir Isotherm Model | Freundlich Isotherm Model | |||||
|---|---|---|---|---|---|---|---|
| qm (mg/g) | KL (L/mg) | RL 1 | R2 | KF (L/mg) | n (L/mg) | R2 | |
| Cu2+ | 0.177 | 0.368 | 0.051–0.352 | 0.992 | 0.047 | 1.996 | 0.966 |
| Ni2+ | 0.123 | 0.267 | 0.070–0.429 | 0.980 | 0.034 | 2.581 | 0.992 |
| Co2+ | 0.077 | 0.533 | 0.036–0.273 | 0.999 | 0.030 | 3.648 | 0.877 |
| Reference | Material | Fabrication Time | Target Ion | C0 (ppm) | Removal Percentage, % R | qm (mg/g) | Contact Time |
|---|---|---|---|---|---|---|---|
| [39], 2025 | Thermally induced BSA hydrogel | 15 h | Cd2+ | 2.54 | 98.54 | - | 24 h |
| Pb2+ | 2.13 | 97.99 | |||||
| [42], 2022 | BSA amyloid fibril aerogel | >140 h | Cu2+ | 25–250 | 80 | 82.2 | 1.5 h |
| [53], 2021 | 3D-printed GO-PDA-BSA aerogel | >50 h | Cr (VI) | 25–200 | 93 | 45.05 | 96 h |
| Pb2+ | 94 | 43.76 | |||||
| [43], 2018 | PA–BSA TFC membrane (forward osmosis) | 1 h | Cu2+ | 2000 | >99 | - | - |
| [45], 2014 | BSA-coated microbubbles | ~2 h | Cu2+ | 98 | - | 1.5 h | |
| Ni2+ | 10–100 | 16 | |||||
| Co2+ | 13 | ||||||
| This work | GA-crosslinked BSA hydrogels | 8 min | Cu2+ | 50–100 | 99.258 | 0.177 | 5 h |
| Ni2+ | 80.733 | 0.123 | |||||
| Co2+ | 76.070 | 0.077 |
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Share and Cite
Lancheros-Ayala, D.; Méndez-Bautista, A.; Barón-Gualdrón, G.; Güiza-Argüello, V. Glutaraldehyde-Crosslinked Bovine Serum Albumin Hydrogels for Efficient Cu2+, Ni2+, and Co2+ Removal from Water. Polymers 2026, 18, 633. https://doi.org/10.3390/polym18050633
Lancheros-Ayala D, Méndez-Bautista A, Barón-Gualdrón G, Güiza-Argüello V. Glutaraldehyde-Crosslinked Bovine Serum Albumin Hydrogels for Efficient Cu2+, Ni2+, and Co2+ Removal from Water. Polymers. 2026; 18(5):633. https://doi.org/10.3390/polym18050633
Chicago/Turabian StyleLancheros-Ayala, Dayana, Angie Méndez-Bautista, Giselle Barón-Gualdrón, and Viviana Güiza-Argüello. 2026. "Glutaraldehyde-Crosslinked Bovine Serum Albumin Hydrogels for Efficient Cu2+, Ni2+, and Co2+ Removal from Water" Polymers 18, no. 5: 633. https://doi.org/10.3390/polym18050633
APA StyleLancheros-Ayala, D., Méndez-Bautista, A., Barón-Gualdrón, G., & Güiza-Argüello, V. (2026). Glutaraldehyde-Crosslinked Bovine Serum Albumin Hydrogels for Efficient Cu2+, Ni2+, and Co2+ Removal from Water. Polymers, 18(5), 633. https://doi.org/10.3390/polym18050633

