首页> 外文期刊>Polymer Degradation and Stability >The role of dispersion of LDH in fire retardancy: The effect of different divalent metals in benzoic acid modified LDH on dispersion and fire retardant properties of polystyrene- and poly(methyl-methacrylate)-LDH-B nanocomposites
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The role of dispersion of LDH in fire retardancy: The effect of different divalent metals in benzoic acid modified LDH on dispersion and fire retardant properties of polystyrene- and poly(methyl-methacrylate)-LDH-B nanocomposites

机译:LDH分散体在阻燃中的作用:苯甲酸改性LDH中不同二价金属对聚苯乙烯和聚(甲基丙烯酸甲酯)-LDH-B纳米复合材料的分散性和阻燃性的影响

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摘要

The influence of three different divalent metals, calcium, magnesium and zinc, using benzoate-modified layered double hydroxides (LDHs), on the dispersion and fire properties of polystyrene (PS) and poly(methyl-methacrylate) (PMMA) is investigated. PS- and PMMA-layered double hydroxide (PS/LDHs PMMA/LDHs) nanocomposites are prepared by in situ bulk polymerization in the presence of the benzoate-modified LDHs. The morphology of the nanocomposites is characterized by X-ray diffraction (XRD) and transmission electron microscopy (TEM). XRD results indicate that the characteristic layered structure of Ca-Al-LDH-B completely disappear in both polymers, whereas for Zn-Al-LDH-B and Mg -Al-LDH-B that is not the case. TEM confirms excellent dispersion and exceptional distribution of exfoliated Ca-Al-LDH-B within both polymer matrices, while for Zn-Al-LDH-B and Mg-Al-LDH-B dispersion is poorer with more tactoids present. Thermal stability and fire properties are investigated by thermogravimetric analysis (TGA) and cone calorimetry (CC). All PMMA nanocomposites show enhanced thermal stability compared to neat PMMA, while thermal stability of PS is enhanced only by the addition of Ca-Al-LDH-B. PS/Ca-Al-LDH-B and PS/Zn-Al-LDH-B systems show better fire properties compared to the PS/Mg-Al-LDH-B; peak heat release rate reduction is 42 and 41 %, respectively, vs. only 15% for the PS/Mg-Al-LDH-B at 10% LDH loading. The largest peak heat release rate reduction (PHRR), 52%, is measured for the PMMA/Mg-Al-LDH-B nanocomposites at 10% LDH loading, although dispersion is very poor. PHRR reduction of the PMMA/Ca-Al-LDH-B nanocomposites at 10% LDH loading is 45%, while 30% reduction of the PHRR is measured for nanocomposites containing 10% Zn-Al-LDH-B.
机译:研究了使用苯甲酸酯改性的层状双氢氧化物(LDHs)三种不同的二价金属钙,镁和锌对聚苯乙烯(PS)和聚(甲基丙烯酸甲酯)(PMMA)的分散性和着火性能的影响。通过在苯甲酸酯改性的LDH的存在下原位本体聚合制备PS和PMMA层的双氢氧化物(PS / LDHs PMMA / LDHs)纳米复合材料。纳米复合材料的形态通过X射线衍射(XRD)和透射电子显微镜(TEM)表征。 XRD结果表明Ca-Al-LDH-B的特征性层状结构在两种聚合物中完全消失,而对于Zn-Al-LDH-B和Mg-Al-LDH-B则不是这种情况。 TEM证实了优异的分散性和片状Ca-Al-LDH-B在两种聚合物基质中的出色分布,而Zn-Al-LDH-B和Mg-Al-LDH-B的分散性较差,存在更多的触针。通过热重分析(TGA)和锥形量热法(CC)研究热稳定性和着火性能。与纯PMMA相比,所有PMMA纳米复合材料均显示出增强的热稳定性,而PS的热稳定性仅通过添加Ca-Al-LDH-B得以增强。与PS / Mg-Al-LDH-B相比,PS / Ca-Al-LDH-B和PS / Zn-Al-LDH-B系统具有更好的防火性能。峰值放热率降低分别为42%和41%,而在10%LDH负荷下PS / Mg-Al-LDH-B的峰值放热率仅为15%。在LDH含量为10%时,PMMA / Mg-Al-LDH-B纳米复合材料的最大峰值放热率降低(PHRR)为52%,尽管分散性非常差。当LDH含量为10%时,PMMA / Ca-Al-LDH-B纳米复合材料的PHRR降低为45%,而对于含10%Zn-Al-LDH-B的纳米复合材料,PHRR降低了30%。

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