De la Cruz Lucía G, Abt Tobias, León Noel, Sánchez-Soto Miguel
Centre Català del Plàstic, Universitat Politècnica de Catalunya, Barcelona Tech (EEBE-UPC), Av. d'Eduard Maristany, 16, 08019 Barcelona, Spain.
Gels. 2024 Aug 10;10(8):526. doi: 10.3390/gels10080526.
Lightweight materials that combine high mechanical strength, insulation, and fire resistance are of great interest to many industries. This work explores the properties of environmentally friendly alginate aerogel composites as potential sustainable alternatives to petroleum-based materials. This study analyzes the effects of two additives (tannic acid and montmorillonite clay), the orientation that results during casting, and the crosslinking of the biopolymer with glutaraldehyde on the properties of the aerogel composites. The prepared aerogels exhibited high porosities between 90% and 97% and densities in the range of 0.059-0.191 g/cm. Crosslinking increased the density and resulted in excellent performance under loading conditions. In combination with axial orientation, Young's modulus and yield strength reached values as high as 305 MPa·cm/g and 7 MPa·cm/g, respectively. Moreover, the alginate-based aerogels exhibited very low thermal conductivities, ranging from 0.038 W/m·K to 0.053 W/m·K. Compared to pristine alginate, the aerogel composites' thermal degradation rate decreased substantially, enhancing thermal stability. Although glutaraldehyde promoted combustion, the non-crosslinked aerogel composites demonstrated high fire resistance. No flame was observed in these samples under cone calorimeter radiation, and a minuscule peak of heat release of 21 kW/m was emitted as a result of their highly efficient graphitization and fire suppression. The combination of properties of these bio-based aerogels demonstrates their potential as substituents for their fossil-based counterparts.
兼具高机械强度、绝缘性和耐火性的轻质材料受到许多行业的高度关注。这项工作探索了环境友好型藻酸盐气凝胶复合材料作为石油基材料潜在可持续替代品的性能。本研究分析了两种添加剂(单宁酸和蒙脱石粘土)、浇铸过程中产生的取向以及生物聚合物与戊二醛的交联对气凝胶复合材料性能的影响。制备的气凝胶孔隙率高达90%至97%,密度在0.059 - 0.191 g/cm范围内。交联增加了密度,并在加载条件下带来优异性能。结合轴向取向,杨氏模量和屈服强度分别高达305 MPa·cm/g和7 MPa·cm/g。此外,藻酸盐基气凝胶的热导率非常低,范围为0.038 W/m·K至0.053 W/m·K。与原始藻酸盐相比,气凝胶复合材料的热降解速率大幅降低,提高了热稳定性。尽管戊二醛会促进燃烧,但未交联的气凝胶复合材料表现出高耐火性。在锥形量热仪辐射下,这些样品未观察到火焰,并且由于其高效的石墨化和阻燃作用,仅释放出21 kW/m的微小热释放峰值。这些生物基气凝胶的综合性能表明它们有潜力替代化石基同类材料。