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具有低发烟量和抗菌能力的仿生结构生物基阻燃涂层于柔性聚氨酯泡沫上。

A biomimetic structured bio-based flame retardant coating on flexible polyurethane foam with low smoke release and antibacterial ability.

机构信息

State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing, 100029, China.

State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing, 100029, China.

出版信息

Chemosphere. 2023 Jan;312(Pt 1):137060. doi: 10.1016/j.chemosphere.2022.137060. Epub 2022 Nov 2.

Abstract

Flexible polyurethane foam (FPUF) is widely used in our life, but it is inherent flammable. The demand for environmental-friendly multi-functional FPUF has been increasing rapidly in the last decade. In this work, a novel bio-based flame retardant coating was constructed by chemically reacting sodium alginate (OSA) and polydopamine (PDA) on the FPUF, followed by depositing nanorod-like β-FeOOH molecules through complexation reaction to form a biomimetic structure. The limiting oxygen index of the coated FPUF samples reached 25.5%. The peak heat release rate was reduced by 45.0%, and the smoke density of the coated sample was decreased by 69.1% compared to that of the control FPUF sample. It was proposed that the OSA-PDA-β-FeOOH decomposed during combustion to promote the formation of compact crosslinked char and released inert gases to dilute the combustible gases, and the β-FeOOH transferred to FeO to settled the smoke particles reducing the smoke release. Furthermore, the coating with shark skin like structure endowed FPUF antibacterial ability because of its good superoleophobicity underwater. This work provided a novel strategy to construct a biomimetic multifunctional coating on the FPUF.

摘要

柔性聚氨酯泡沫(FPUF)在我们的生活中被广泛应用,但它本质上是易燃的。在过去十年中,对环保型多功能 FPUF 的需求迅速增加。在这项工作中,通过在 FPUF 上化学反应将海藻酸钠(OSA)和聚多巴胺(PDA)反应,然后通过络合反应沉积纳米棒状β-FeOOH 分子,形成仿生结构,构建了一种新型的生物基阻燃涂层。涂覆 FPUF 样品的极限氧指数达到 25.5%。与对照 FPUF 样品相比,峰值热释放率降低了 45.0%,烟雾密度降低了 69.1%。据推测,OSA-PDA-β-FeOOH 在燃烧过程中分解,促进了紧密交联炭的形成,并释放了惰性气体来稀释可燃气体,而β-FeOOH 转化为 FeO 来沉降烟雾颗粒,从而减少烟雾释放。此外,由于其良好的水下超疏油性,具有鲨鱼皮状结构的涂层使 FPUF 具有抗菌能力。这项工作为在 FPUF 上构建仿生多功能涂层提供了一种新策略。

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