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Simultaneous Hardening/Ductilizing Effects of Cryogenic Nanohybridization of Biopolyamides with Montmorillonites

机译:蒙脱土与生物聚酰胺的低温纳米杂化同时硬化/施胶效果

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We prepared organic/inorganic bionanohybrid resins of polyamides containing pyrrolidone in the backbone derived from the salt monomers of an itaconic acid biomolecule with various nanofillers, montmorillonites (MMTs), by cryogenic nanohybridizations. The nanohybridizations with MMTs hardened and strengthened the polypyrrolidone bioplastic resins owing to a simple reinforcement of hard filler incorporation. On the other hand, the elongation at break of the resins is unexpectedly increased by the nanohybridization with MMT sodium salt (NaMMT) to enhance the strain energy density, which differed from those of the nanohybrids with other organically modified MMTs. From spectroscopic analyses, we discuss the mechanism of such ductilization effects by NaMMT, the catalytic effect of NaMMT on partially opening the pyrrolidone ring to make polymer backbones flexible and to form carboxyl side chains that are strongly interactive with NaMMT fillers.
机译:我们通过低温纳米杂化制备了在衣康酸生物分子的盐单体与各种纳米填料,蒙脱土(MMT)衍生的主链中含有吡咯烷酮的聚酰胺的有机/无机生物杂化树脂。由于简单地增强了硬填料的掺入,具有MMT的纳米杂化作用增强并增强了聚吡咯烷酮生物塑料树脂。另一方面,通过与MMT钠盐(NaMMT)的纳米杂化以增强应变能密度,树脂的断裂伸长率出乎意料地增加,这不同于具有其他有机改性的MMT的纳米杂化物的应变能密度。从光谱分析,我们讨论了NaMMT的这种延展作用的机理,NaMMT对部分打开吡咯烷酮环以使聚合物主链具有柔性并形成与NaMMT填料强烈相互作用的羧基侧链的催化作用。

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