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首页> 外文期刊>RSC Advances >Functional group effect on flame retardancy, thermal, and mechanical properties of organophosphorus-based magnesium oxysulfate whiskers as a flame retardant in polypropylene
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Functional group effect on flame retardancy, thermal, and mechanical properties of organophosphorus-based magnesium oxysulfate whiskers as a flame retardant in polypropylene

机译:官能团对聚丙烯中作为阻燃剂的有机磷基氧硫酸镁晶须的阻燃性,热和机械性能的影响

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In this paper, magnesium oxysulfate whiskers (MOSw) were reacted with dodecyl dihydrogen phosphate (DDP) to prepare DDP functionalized MOSw (DDPMOSw). The morphology and structure of DDPMOSw were characterized by scanning electron microscopy (SEM), transmission electron microscopy (TEM), Fourier transform infrared spectroscopy (FTIR), and X-ray photoelectron spectroscopy (XPS). Then MOSw and DDPMOSw were respectively incorporated into polypropylene (PP) to obtain hybrid composites via the melt mixing method. SEM results showed that the DDPMOSw were distributed more evenly within the PP matrix than MOSw, resulting in the improved thermal stability, nominal strain at break, and impact toughness of PP/DDPMOSw in comparison with PP/MOSw. The flammability of the composites was investigated using limiting oxygen index (LOI) and cone calorimetry (CC) tests. The results showed that the introduction of DDPMOSw into the PP matrix further increased the LOI, meanwhile, reducing the heat release rate (HRR), smoke production rate (SPR) and CO and CO2 release. SEM and energy dispersive spectroscopy (EDS) analyses of the char residues implied two reasons for the more efficient flame-retardant properties of PP/DDPMOSw than PP/MOSw: (i) DDPMOSw was more thoroughly decomposed to release more nonflammable gases and absorb more heat during the combustion process (gas-phase flame-retardant effect); (ii) DDP induced the formation of the carbonaceous residue, leading to a compact and coherent char based on MgO whiskers backbone (condensed-phase flame-retardant effect). Besides, FTIR results indicated that the phosphorous compound layer in the condensed phase also acted as a protective shield.
机译:在本文中,使氧硫酸镁晶须(MOSw)与十二烷基磷酸二氢酯(DDP)反应制备DDP功能化的MOSw(DDPMOSw)。 DDPMOSw的形貌和结构通过扫描电子显微镜(SEM),透射电子显微镜(TEM),傅里叶变换红外光谱(FTIR)和X射线光电子能谱(XPS)进行表征。然后将MOSw和DDPMOSw分别掺入聚丙烯(PP)中,通过熔融混合法 得到杂化复合材料。 SEM结果表明,与MOSw相比,DDPMOSw在PP基体中的分布比MOSw更均匀,从而改善了PP / DDPMOSw的热稳定性,标称断裂应变和冲击韧性。使用极限氧指数(LOI)和锥形量热法(CC)测试研究了复合材料的可燃性。结果表明,将DDPMOSw引入PP基体中可以进一步提高LOI,同时降低了放热率(HRR),烟气产生率(SPR)以及CO和CO 2 < / small>发布。扫描电镜和焦炭残留物的能量色散光谱(EDS)分析表明,PP / DDPMOSw的阻燃性能比PP / MOSw更有效的两个原因:(i)DDPMOSw分解得更彻底,释放出更多的不可燃气体并吸收更多的热量在燃烧过程中(气相阻燃作用); (ii)DDP诱导了碳质残留物的形成,从而导致了基于MgO晶须骨架的致密且连贯的炭(冷凝相阻燃效果)。此外,FTIR结果表明,在凝结相中的磷化合物层也起到了保护屏蔽的作用。

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