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Synthesis and characterization of novel UV-curable polyurethane-clay nanohybrid: Influence of organically modified layered silicates on the properties of polyurethane

机译:新型紫外光固化聚氨酯-粘土纳米杂化材料的合成与表征:有机改性层状硅酸盐对聚氨酯性能的影响

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Nanohybrids based on UV-curable polyurethane acrylate (PU) and cloisite 20B (C-20B) have been synthesized by solution blending method using different loading levels of C-20B. The structures of PU/C-20B nanohybrids were confirmed by Fourier transform infrared spectroscopy (FTIR) while X-ray diffraction and transmission electron microscopy (TEM) showed the intercalation of PU into layer silicates. The thermal properties of PU and PU/C-20B nanohybrids were investigated by thermal gravimetric analysis (TGA) and differential scanning calorimetric (DSC). TGA tests revealed that the thermal decomposition temperature (T_(d10%)) of the nanohybrid containing 5 wt% of C-20B increased significantly, being 61 °C higher than that of pure PU while DSC measurements indicated that the introduction of 5 wt% of clay increased the glass transition temperature from 89.7 to 101 °C. Accordingly, the mechanical and anti-water absorption properties proved also to be enhanced greatly as evidenced by nanoindentation anylsis and water absorptions data in which the nanohybrid containing 5 wt% of clay have highest elastic modulus (4.508 GPa), hardness (0.230 GPa) and lowest water absorption capacity. Thus the formations of nanohybrids manifests through the enhancement of thermal, mechanical and anti-water absorption properties as compared with neat PU due to the nanometer-sized dispersion of layered silicate in polymer matrix.
机译:通过溶液共混方法,使用不同的C-20B负载量,合成了基于UV固化聚氨酯丙烯酸酯(PU)和蓝闪石20B(C-20B)的纳米混杂物。 PU / C-20B纳米杂化物的结构通过傅里叶变换红外光谱(FTIR)得以证实,而X射线衍射和透射电子显微镜(TEM)显示PU插入层状硅酸盐中。通过热重分析(TGA)和差示扫描量热法(DSC)研究了PU和PU / C-20B纳米杂化物的热性能。 TGA测试表明,含有5 wt%的C-20B的纳米杂化物的热分解温度(T_(d10%))显着提高,比纯PU的热分解温度高61°C,而DSC测量表明引入了5 wt%的C-20B。粘土将玻璃化转变温度从89.7提高到101°C。因此,如纳米压痕分析和吸水数据所证明的那样,机械和抗吸水性能也大大提高,其中包含5 wt%粘土的纳米杂化体具有最高的弹性模量(4.508 GPa),硬度(0.230 GPa)和最低的吸水能力。因此,由于层状硅酸盐在聚合物基质中的纳米尺寸分散,与纯聚氨酯相比,纳米杂化物的形成通过热,机械和抗吸水性能的增强而表现出来。

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