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Open access Aug 2026

Calcination Effects on 3D-Printed Phosphate-Activated Geopolymer Lattices: Structure, Strength, and Stability in Acidic Media

Phosphate-activated geopolymers (PAGPs), a class of acid-activated rather than alkali-activated binders, are promising monolithic materials, yet optimizing porosity while maintaining stability in highly acidic waters remains challenging. Here, a metakaolin–phosphoric acid geopolymer ink containing laponite and Pluronic F127 (PLU) was formulated for direct ink writing (DIW) and printed as lattice monoliths (15 × 15 × 8 mm). A calcination window (350–550 °C) was applied to remove the PLU template and to elucidate how thermal severity governs phase/bond evolution, pore features, mechanical integrity, and performance in a multicomponent synthetic acid water (pH 2.96) containing Fe, Al, Zn, Mn, and Cu. XRD/FTIR indicated progressive template removal, dehydration, and phosphate-network consolidation with increasing temperature, consistent with structural evolution reported for acid-based geopolymers. Texturally, calcination strongly increased bulk porosity (45% to 61–63%) and promoted mesopore “unblocking” (largest BJH pore diameter and pore volume at 450 °C), whereas the specific surface area (SSA) increased only modestly (4.89 to 6.53–6.87 m2 g–1), highlighting that the dominant porosity changes occurred at larger length scales not fully captured by N2 physisorption. Mechanically, a pronounced strength–porosity trade-off was observed: 350 °C increased compressive strength (13.72 ± 0.33 → 27.16 ± 0.89 MPa), while ≥450 °C produced highly porous lattices but reduced strength to ∼5–6 MPa. In acidic conditions, calcination did not uniformly reduce leaching/enhance removal for all target metals; however, it consistently reduced the release of framework/trace species (notably Al, Ni, and V), evidencing improved chemical stability under acidic exposure. Overall, calcination can be tuned either toward higher robustness (350 °C) or higher porosity with reduced leaching (≥450 °C), depending on the intended operating constraints in acidic remediation.

G. Tochetto, Arielle Cristina Fornari, G. D. Pasquali et al. · 0 citations
Open access Aug 2026

Use of manuka honey and oregano essential oil as antibacterial coatings for 3D-printed alginate/PVA/45S5 bioactive glass scaffolds

The treatment of infected bone defects remains a major clinical challenge due to the limitations of conventional systemic antibiotic therapies and the ability of bacteria to form resilient biofilms. In this context, scaffolds capable of delivering local antibacterial activity while supporting tissue regeneration represent a promising alternative. This study reports the fabrication of 3D-printed composite scaffolds composed of alginate, poly(vinyl alcohol) (PVA), and 45S5 bioactive glass, subsequently functionalized with gelatin (GEL) coatings incorporating manuka honey (MH) or oregano essential oil (OEO). Release studies showed that approximately 90% of MH and OEO were released within the first 7 days, suggesting a burst release mechanism. This translated into strong initial antibacterial activity of GEL + MH and GEL + OEO scaffolds against Staphylococcus aureus and Escherichia coli, although the effect decreased after 24 h. Based on the MIC values, OEO showed markedly higher antibacterial potential than MH against both bacterial strains, reinforcing its suitability as a potent natural agent. Cytocompatibility assays revealed that while MH and OEO in pure form displayed some cytotoxicity, their incorporation into the gelatin coating markedly reduced adverse effects, maintaining cell viability above the ISO 10993–5 threshold. These findings indicate that phytotherapeutic-functionalized gelatin coatings can provide effective short-term antibacterial protection without compromising cytocompatibility. Strategies to further optimize release profiles and prolong antibacterial activity are discussed. Overall, the developed scaffolds show strong potential for application in tissue engineering, particularly in infection-prone environments such as bone defect repair, with potential relevance to chronic wound healing applications.

Vivian Inês dos Santos, Meng Li, Sara Benhassan et al. · 0 citations

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