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磷酸化海藻酸钠填充的脱木质素木材增强透明木材:制备阻燃复合材料。

Phosphorylated sodium alginate-filled delignified wood-reinforced transparent wood: Crafting flame-retardant composites.

作者信息

Guo Mingjie, Pan Ying, Xu Shengjun, Wang Wei, Zhang Yan, Xu Shaodan, Wu Dihua, Zhang Dong, Zhang Suling, Lü Ting, Zhao Hongting

机构信息

Institute of Environmental Materials and Applications, College of Materials and Environmental Engineering, Hangzhou Dianzi University, Hangzhou 310018, PR China.

Institute of Environmental Materials and Applications, College of Materials and Environmental Engineering, Hangzhou Dianzi University, Hangzhou 310018, PR China.

出版信息

Carbohydr Polym. 2025 Oct 15;366:124021. doi: 10.1016/j.carbpol.2025.124021. Epub 2025 Jul 7.

Abstract

Transparent wood (TW), an emerging sustainable material with high optical transmittance and mechanical strength, is hindered by the inherent flammability of its cellulose-lignin matrix, posing fire risks. To address this, we developed an eco-friendly flame-retardant TW by integrating phosphorylated sodium alginate (PSA)-filled delignified wood with polyurethane acrylic resin (PUA). Delignified balsa wood was freeze-dried into a porous structure, functionalized with PSA, and reinforced with UV-cured PUA. Structural characterization confirmed uniform PSA coating on delignified wood channels, introducing phosphorus groups that enhanced thermal stability and flame retardancy. Combustion tests revealed self-extinguishing behavior in PSA-modified delignified woods, reducing peak heat release rate (pHRR) by 67 % and total heat release (THR) by 80 % versus delignified wood. The final PUA/wood-PSA3 composite demonstrated a 27 % pHRR reduction and 47 % lower THR compared to pure PUA, alongside 61 % less smoke emission. Optical transmittance of composites decreased moderately due to PSA's light absorption, while tensile strengths of PUA/wood composites surged to 30 MPa owing to the aligned cellulose scaffold. The flame-retardant mechanisms were investigated using characterization of the char residue and molecular dynamics simulations. These methods demonstrated the effectiveness of phosphorus-induced char formation and radical quenching in enhancing fire safety while preserving essential material properties.

摘要

透明木材(TW)是一种新兴的可持续材料,具有高透光率和机械强度,但其纤维素-木质素基体固有的易燃性阻碍了它的应用,带来了火灾风险。为了解决这个问题,我们通过将填充有磷酸化海藻酸钠(PSA)的脱木质素木材与聚氨酯丙烯酸树脂(PUA)相结合,开发出了一种环保型阻燃透明木材。将脱木质素的轻木冷冻干燥成多孔结构,用PSA进行功能化处理,并用紫外光固化的PUA进行增强。结构表征证实脱木质素木材通道上有均匀的PSA涂层,引入了磷基团,提高了热稳定性和阻燃性。燃烧测试表明,PSA改性的脱木质素木材具有自熄行为,与脱木质素木材相比,峰值热释放速率(pHRR)降低了67%,总热释放(THR)降低了80%。最终的PUA/木材-PSA3复合材料与纯PUA相比,pHRR降低了27%,THR降低了47%,同时烟雾排放量减少了61%。由于PSA的光吸收,复合材料的透光率适度下降,而PUA/木材复合材料的拉伸强度由于纤维素支架的排列而飙升至30MPa。通过对残炭的表征和分子动力学模拟研究了阻燃机理。这些方法证明了磷诱导成炭和自由基猝灭在提高消防安全的同时保持基本材料性能方面的有效性。

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