一直以来,开发高效阻燃剂具有重要意义。乙烯醋酸乙烯酯(EVA)易燃、耐火性能差,严重阻碍了其在高要求下的广泛应用。在此,提出了一种新的策略,将长链磷杂菲接枝的 MXene(DPP-MXene,也作为 DM 捐赠)和黑色磷烯纳米片(BP)与 EVA 结合,以制造具有高耐火性的 EVA/DMBP 纳米复合材料。热重分析 (TGA) 证明,DMBP 协同体系可以显着提高 EVA 的热稳定性和成炭能力,延迟热分解温度也证明了这一点。燃烧测试结果表明添加 3 wt. % DMBP 加入 EVA 基体可以诱导 EVA/DMBP-3 复合材料具有良好的阻燃性能,EVA/DMBP-3 组件达到了 UL-94 V-0 等级和极限氧指数 (LOI) 值 (26.7%),并且显着降低了总热释放 (THR) (21.5%) 和峰值热释放率(PHRR) (48.1 %) 是通过添加 3 wt. % DMBP加入EVA弹性体,表明其不燃性。此外,发现与纯 EVA 相比,加入 DMBP 协同系统仅产生 EVA/DMBP-3 复合材料,其拉伸强度和断裂伸长率略有降低。前景阻燃剂的高效性为EVA的广泛应用提供了具有竞争力的候选材料。1% 是通过添加 3 wt. % DMBP加入EVA弹性体,表明其不燃性。此外,发现与纯 EVA 相比,加入 DMBP 协同系统仅产生 EVA/DMBP-3 复合材料,其拉伸强度和断裂伸长率略有降低。前景阻燃剂的高效性为EVA的广泛应用提供了具有竞争力的候选材料。1% 是通过添加 3 wt. % DMBP加入EVA弹性体,表明其不燃性。此外,发现与纯 EVA 相比,加入 DMBP 协同系统仅产生 EVA/DMBP-3 复合材料,其拉伸强度和断裂伸长率略有降低。前景阻燃剂的高效性为EVA的广泛应用提供了具有竞争力的候选材料。
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Dual modification of EVA by long chain phosphaphenanthrene grafted MXene and black phosphorene nanosheets for simultaneously enhanced thermal stability and flame retardancy
It is significant to develop high-efficient fire retardants all the time. Ethylene vinyl acetate (EVA) features flammability and poor fire resistance ability, which severely hindered its extensive application with advanced requirements. Herein, a novel strategy was proposed to combining long chain phosphaphenanthrene grafted MXene (DPP-MXene, also donated as DM) and black phosphorene nanosheets (BP) with EVA to fabricate EVA/DMBP nanocomposites with high fire resistance. Thermogravimetric analysis (TGA) proved that DMBP synergistic system can significantly improve the thermal stability and char forming ability of EVA as proved by delayed thermal decomposition temperatures. The combustion test results suggested that the addition of 3 wt. % DMBP into EVA matrix can induce the EVA/DMBP-3 composites with favorable flame resistance property, the UL-94 V-0 rating and limiting oxygen index (LOI) value (26.7 %) was achieved for the EVA/DMBP-3 components, and significantly decrease in total heat release (THR) (21.5 %) and peak heat release rate (PHRR) (48.1 %) were achieved by addition of 3 wt. % DMBP into EVA elastomer, indicated its incombustible nature. Furthermore, it was found that the incorporation of DMBP synergistic system only yielded the EVA/DMBP-3 composites with slight reduction of the tensile strength and elongation at break as compared to neat EVA. The high efficiency of the prospect flame retardant provided a competitive candidate material for EVA towards wide applications.