Wu Qian, Liu Chun, Tang Longcheng, Yan Yue, Qiu Huayu, Pei Yongbing, Sailor Michael J, Wu Lianbin
Key Laboratory of Organosilicon Chemistry and Materials Technology of Ministry of Education, Hangzhou Normal University, Hangzhou, 311121, P. R. China.
Soft Matter. 2021 Jan 7;17(1):68-82. doi: 10.1039/d0sm01540g. Epub 2020 Nov 4.
To acheive flexible polyurethane (PU) foam composites with stable electrical conductivity and high flame retardancy involved first coating of graphene oxide (GO) onto PU foam surfaces and then chemically reducing the GO with hydrazine to form reduced GO (RGO). The RGO-coated PU foam is then dipped into a solution containing silicone resin (SiR) and silica nano-particles and cured. The resulting composites (PU-RGO-SiR) show superior flame retardancy, thermal stability and mechanical stability relative to the PU starting materials or PU coated with either RGO or SiR alone. The electrical conductivity of the PU-RGO-SiR composites (as high as 118 S m at room temperature) could almost be retained but with small loss of 9.5% of the original value after 150 cyclic compression. When the samples were subjected to a temperature range from -50 to 400 °C, the electrical conductivity could remain constant at -50 °C, 25 °C, 100 °C, 200 °C, and even at 300 °C and 400 °C; the electrical-conductivity exhibited mild vibration but the vibration range was not beyond 5.6%. Flame retardancy tests show that the limiting oxygen index (LOI) increases from 14.7% for the pure foam to 31.5% for PU-RGO-SiR, and the PU-RGO-SiR composites exhibit a 65% reduction in the peak heat release rate (pHRR) and a 30% reduction in total smoke release (TSR). Thus, stable electrically conductive and highly flame-retardant foam composites have potential applications even in a variety of harsh conditions like high temperature, flame, organic solvents, and external compression.
要获得具有稳定导电性和高阻燃性的柔性聚氨酯(PU)泡沫复合材料,首先要在PU泡沫表面涂覆氧化石墨烯(GO),然后用肼对GO进行化学还原,形成还原氧化石墨烯(RGO)。然后将涂有RGO的PU泡沫浸入含有硅树脂(SiR)和二氧化硅纳米颗粒的溶液中并固化。相对于起始PU材料或单独涂有RGO或SiR的PU,所得复合材料(PU-RGO-SiR)具有优异的阻燃性、热稳定性和机械稳定性。PU-RGO-SiR复合材料的电导率(室温下高达118 S/m)在150次循环压缩后几乎可以保留,但仅损失原始值的9.5%。当样品在-50至400°C的温度范围内时,电导率在-50°C、25°C、100°C、200°C,甚至在300°C和400°C时都能保持恒定;电导率呈现轻微波动,但波动范围不超过5.6%。阻燃测试表明,极限氧指数(LOI)从纯泡沫的14.7%提高到PU-RGO-SiR的31.5%,并且PU-RGO-SiR复合材料的峰值热释放速率(pHRR)降低了65%,总烟雾释放量(TSR)降低了30%。因此,即使在高温、火焰、有机溶剂和外部压缩等各种恶劣条件下,稳定的导电且高阻燃的泡沫复合材料也具有潜在的应用价值。