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首页> 外文期刊>Composites >Mechanism of the nanoparticle-catalyzed polymerization of furfuryl alcohol and the thermal and mechanical properties of the resulting nanocomposites
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Mechanism of the nanoparticle-catalyzed polymerization of furfuryl alcohol and the thermal and mechanical properties of the resulting nanocomposites

机译:糠醇的纳米颗粒催化聚合机理及所得纳米复合材料的热力学性能

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摘要

Bio-based polyfurfuryl alcohol (PFA) matrix nanocomposites were fabricated by in situ polymerization of furfuryl alcohol (FA) using (natural or organomodified) montmorillonite nanoclays (MMT) or cellulose whiskers (CW) as catalysts and as matrix modifiers, providing enhanced thermal performance. FTIR anal ysis shows the catalyst-dependent formation of gamma-diketones that are generated from hydrolytic ring cleavage of the furan rings along the PFA chain. Thermogravimetric Analysis (TGA) shows that the PFA-based nanocomposites exhibit a notable increase in the onset of degradation temperature compared to pure PFA. The oxidative degradation behavior, including degradation onset temperature and residual weight, was analyzed and compared for the various nanocomposites. The higher thermal stability of 30BMMT-PFA as compared with NaMMT-PFA is tentatively attributed to blocking of Bronstedt acidic sites on the clay surface by residues of the organic modifier. However, the highest thermal stability among the various PFA-based nanocomposites that were studied in this work was observed in those con taining nanocellulose whiskers (ON), even at much lower volume loadings. Finally, in addition to their surprisingly remarkable thermal stability, CW-PFA nanocomposites also exhibited improved mechanical toughness over previously reported PFA systems.
机译:通过使用(天然或有机改性的)蒙脱土纳米粘土(MMT)或纤维素晶须(CW)作为催化剂和基质改性剂,通过糠醇(FA)的原位聚合制备生物基聚糠醇(PFA)基质纳米复合材料。 。 FTIR分析表明,呋喃环沿PFA链的水解环裂解产生了γ-二酮,与催化剂有关。热重分析(TGA)表明,与纯PFA相比,基于PFA的纳米复合材料的降解温度开始显着提高。分析和比较了各种纳米复合材料的氧化降解行为,包括降解起始温度和残留重量。 30BMMT-PFA与NaMMT-PFA相比具有更高的热稳定性,这暂时归因于有机改性剂的残留物对粘土表面的布朗斯台德酸性位点的阻塞。但是,在包含纳米纤维素晶须(ON)的那些中,即使在低得多的体积负载下,也观察到了在这项工作中研究的各种基于PFA的纳米复合材料中最高的热稳定性。最后,除了具有惊人的出色的热稳定性外,CW-PFA纳米复合材料还具有比先前报道的PFA系统更高的机械韧性。

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