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Fabrication of Ce-doped MnO2decorated graphene sheets for fire safety applications of epoxy composites: flame retardancy, smoke suppression and mechanism

机译:用于环氧复合材料防火应用的Ce掺杂mnO2强化石墨烯片的制备:阻燃性,抑烟性和机理

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摘要

Ce-doped MnO2–graphene hybrid sheets were fabricated by utilizing an electrostatic interaction between Ce-doped MnO2 and graphene sheets. The hybrid material was analyzed by a series of characterization methods. Subsequently, the Ce-doped MnO2–graphene hybrid sheet was introduced into an epoxy resin, and the fire hazard behaviors of the epoxy nanocomposite were investigated. The results from thermogravimetric analysis exhibited that the incorporation of 2.0 wt% of Ce-doped MnO2–graphene sheets clearly improved the thermal stability and char residue of the epoxy matrix. In addition, the addition of Ce–MnO2–graphene hybrid sheets imparted excellent flame retardant properties to an epoxy matrix, as shown by the dramatically reduced peak heat release rate and total heat release value obtained from a cone calorimeter. The results of thermogravimetric analysis/infrared spectrometry, cone calorimetry and steady state tube furnace tests showed that the amount of organic volatiles and toxic CO from epoxy decomposition were significantly suppressed after incorporating Ce–MnO2–graphene sheets, implying that this hybrid material has reduced fire hazards. A plausible flame-retardant mechanism was hypothesized on the basis of the characterization of char residues and direct pyrolysis-mass spectrometry analysis: during the combustion, Ce–MnO2, as a solid acid, results in the formation of pyrolysis products with lower carbon numbers. Graphene sheets play the role of a physical barrier that can absorb the degraded products, thereby extend their contact time with the metal oxides catalyst, and then promote their propagate on the graphene sheets; meanwhile pyrolysis fragments with lower carbon numbers can be easily catalyzed in the presence of Ce–MnO2. The notable reduction in the fire hazards was mainly attributed to the synergistic action between the physical barrier effect of graphene and the catalytic effect of Ce–MnO2.
机译:掺铈的MnO2-石墨烯杂化片是利用掺铈的MnO2和石墨烯片之间的静电相互作用制成的。通过一系列表征方法分析了杂化材料。随后,将掺Ce的MnO2-石墨烯杂化片材引入环氧树脂中,并研究了环氧纳米复合材料的火灾隐患。热重分析的结果表明,掺入2.0 wt%的Ce掺杂的MnO2-石墨烯片明显改善了环氧基质的热稳定性和残炭。另外,添加Ce-MnO2-石墨烯杂化片材可为环氧基质赋予出色的阻燃性能,这可从锥形量热仪获得的峰值放热率和总放热值显着降低来证明。热重分析/红外光谱,锥形量热法和稳态管式炉试验的结果表明,掺入Ce-MnO2-石墨烯片后,环氧分解产生的有机挥发物和有毒CO的量得到了显着抑制,这表明这种杂化材料减少了火危害。根据炭渣的表征和直接的热解质谱分析法,提出了一种可能的阻燃机制:在燃烧过程中,作为固体酸的Ce-MnO2导致形成碳数较低的热解产物。石墨烯片起到物理屏障的作用,可以吸收降解的产物,从而延长它们与金属氧化物催化剂的接触时间,然后促进它们在石墨烯片上的扩散。同时,在Ce–MnO2的存在下,低碳数的热解碎片很容易被催化。火灾危险性的显着降低主要归因于石墨烯的物理屏障作用与Ce-MnO2的催化作用之间的协同作用。

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