Pan Haifeng, Wang Wei, Pan Ying, Song Lei, Hu Yuan, Liew Kim Meow
State Key Laboratory of Fire Science, University of Science and Technology of China , 96 Jinzhai Road, Hefei, Anhui 230026, People's Republic of China.
ACS Appl Mater Interfaces. 2015 Jan 14;7(1):101-11. doi: 10.1021/am507045g. Epub 2014 Dec 22.
A fire blocking coating made from chitosan, titanate nanotubes and alginate was deposited on a flexible polyurethane (FPU) foam surface by a layer-by-layer assembly technique in an effort to reduce its flammability. First, titanate nanotubes were prepared by a hydrothermal method. And then the coating growth was carried out by alternately submerging FPU foams into chitosan solution, titanate nanotubes suspension and alginate solution. The mass gain of coating on the surface of FPU foams showed dependency on the concentration of titanate nanotubes suspension and the trilayers's number. Scanning electron microscopy indicated that titanate nanotubes were distributed well on the entire surface of FPU foam and showed a randomly oriented and entangled network structure. The cone calorimeter result indicated that the coated FPU foams showed reduction in the peak heat release rate (peak HRR), peak smoke production rate (peak SPR), total smoke release (TSR) and peak carbon monoxide (CO) production compared with those of the control FPU foam. Especially for the FPU foam with only 5.65 wt % mass gain, great reduction in peak HRR (70.2%), peak SPR (62.8%), TSR (40.9%) and peak CO production (63.5%) could be observed. Such a significant improvement in flame retardancy and the smoke suppression property for FPU foam could be attributed to the protective effect of titanate nanotubes network structure formed, including insulating barrier effect and adsorption effect.
采用层层组装技术,将由壳聚糖、钛酸酯纳米管和海藻酸盐制成的防火涂层沉积在柔性聚氨酯(FPU)泡沫表面,以降低其可燃性。首先,通过水热法制备钛酸酯纳米管。然后,将FPU泡沫交替浸入壳聚糖溶液、钛酸酯纳米管悬浮液和海藻酸盐溶液中,进行涂层生长。FPU泡沫表面涂层的质量增益取决于钛酸酯纳米管悬浮液的浓度和层数。扫描电子显微镜表明,钛酸酯纳米管在FPU泡沫的整个表面分布良好,呈现出随机取向和缠结的网络结构。锥形量热仪结果表明,与对照FPU泡沫相比,涂覆的FPU泡沫在峰值热释放速率(峰值HRR)、峰值产烟速率(峰值SPR)、总烟雾释放量(TSR)和峰值一氧化碳(CO)产量方面均有所降低。特别是对于质量增益仅为5.65 wt%的FPU泡沫,可观察到峰值HRR(70.2%)、峰值SPR(62.8%)、TSR(40.9%)和峰值CO产量(63.5%)大幅降低。FPU泡沫在阻燃性和抑烟性能方面的如此显著改善可归因于所形成的钛酸酯纳米管网络结构的保护作用,包括绝缘屏障效应和吸附效应。