Journal of Cleaner Production· 2026Q1
3D-printed polymeric cryogel for tetracycline adsorption
- 0citations
- Q1SCImago
- 2026year
Short summary
A 3D-printed cryogel made from gelatin, carboxymethylcellulose, and sodium alginate, crosslinked with Fe3+, achieved a maximum experimental tetracycline adsorption capacity of 336.45 mg/g, with a theoretical maximum of 445.61 mg/g.
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Abstract
The removal of emerging contaminants from aqueous systems remains a significant environmental challenge. Among the adsorbent materials explored for water treatment, cryogels based on natural polymers have emerged as promising candidates due to their interconnected macroporous structure, enhanced mass-transfer properties, and environmentally friendly composition. In this study, a 3D-printed cryogel composed of gelatin, carboxymethylcellulose, and sodium alginate, and crosslinked with Fe 3+ was developed for tetracycline (TC) adsorption in aqueous solution. The Fe-crosslinked cryogel (Cryogel-Fe) was characterized regarding its microstructure, porosity, surface area, and physical, chemical, rheological, thermal, and adsorption properties. The material exhibited a hierarchical macroporous structure with porosity of approximately 91%, as well as stability and swelling capacity in aqueous media, good thermal stability, and excellent rheological properties. The Cryogel-Fe reached a maximum experimental adsorption capacity of 336.45 mg g −1 for TC, while the Langmuir model yielded a theoretical maximum capacity (q max ) of 445.61 mg g −1 . Adsorption analysis indicated that TC removal was governed by a combination of adsorption and diffusion processes, while FTIR, Raman, and XPS results supported the involvement of hydrogen bonding, electrostatic interactions, and possible Fe-assisted interactions. Furthermore, Cryogel-Fe retained more than 80% of its adsorption efficiency after three reuse cycles and maintained high TC removal efficiency in the presence of common coexisting ions and in real water samples. These results demonstrate that the combination of 3D printing, natural polymers, and Fe 3+ crosslinking provides an effective strategy for developing sustainable adsorbents for antibiotic removal.
The authors' abstract, as published at the source. Journal of Cleaner Production, 2026 · DOI ↗
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