Thermal, mechanical, electrical properties of poystyrene/poly (styrene-b-isobutylene-b-styrene/carbon nanotube nanocomposites

Sinan Şen, Melek Irmak Cengiz, Emre Tekay
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Abstract

In this study, high impact polystyrene (HIPS) materials was prepared by using a styrenic elastomer (10, 20, 30 wt%) and carbon nanotube (CNT) (3, 5, 7, 10 phr) by melt blending technique as alternative to commercial HIPS including polybutadiene rubber. The poly (styrene- b-isobutylene- b-styrene) (SIBS) was used as thermoplastic elastomer with polystyrene (PS) to improve its poor impact resistance and CNT was added to PS/SIBS blend matrix to maintain its strength and stiffness. The modulus, tensile strength and toughness values of the blends decreased while those of impact resistance increased in comparison to neat PS. The impact strength of PS20SIBS blend containing 20 wt% SIBS was found to be approximately 530% higher than pure PS. The nanocomposites of the PS20SIBS exhibited a decrease in the size of SIBS particles with increasing CNT compared to PS20SIBS. This was ascribed to the increased viscosity of PS matrix via CNT filler, preventing the coalescence of the elastomer domains. Compared to the PS20SIS, its nanocomposites showed higher strength, modulus and toughness, but lower impact strength. The toughness of the nanocomposite containing 5 phr CNT (PS20SIBS-5CNT), increased by 117% while its creep deformation decreased by approximately 40%, in comparison with PS20SIBS blend. Although PS20SIBS-5CNT exhibited lower impact strength than the PS20SIBS blend due to the dispersion of smaller SIBS particles in the PS matrix, it still increased the impact strength of pure PS by 188%. The PS20SIBS-5CNT nanocomposite, which improved impact strength and creep resistance with optimal toughness and tensile modulus can be used as a novel HIPS material that tunes the hardness-toughness/impact balance effectively. Moreover, the same nanocomposite was found to reach the conductivity threshold by exhibiting 106 times lower electrical resistance in comparison with that containing 3 phr CNT, leading to a conductive filer network with 5 phr loading of the nanotubes into the system.
聚苯乙烯/聚异丁烯-苯乙烯/碳纳米管纳米复合材料的热、机械和电气性能
本研究采用熔融混合技术,使用苯乙烯弹性体(10、20、30 wt%)和碳纳米管(CNT)(3、5、7、10 phr)制备了高抗冲聚苯乙烯(HIPS)材料,以替代包括聚丁二烯橡胶在内的商用 HIPS。聚(苯乙烯-b-异丁烯-b-苯乙烯)(SIBS)作为热塑性弹性体与聚苯乙烯(PS)混合使用,以改善其较差的抗冲击性,并在 PS/SIBS 混合基体中添加碳纳米管以保持其强度和刚度。与纯 PS 相比,混合物的模量、拉伸强度和韧性值都有所下降,而抗冲击性值则有所上升。含有 20 wt% SIBS 的 PS20SIBS 混合物的冲击强度比纯 PS 高出约 530%。与 PS20SIBS 相比,随着 CNT 的增加,PS20SIBS 纳米复合材料中的 SIBS 颗粒尺寸减小。这是因为 CNT 填料增加了 PS 基体的粘度,阻止了弹性体畴的凝聚。与 PS20SIS 相比,其纳米复合材料具有更高的强度、模量和韧性,但冲击强度较低。与 PS20SIBS 混合材料相比,含有 5 phr CNT 的纳米复合材料(PS20SIBS-5CNT)的韧性提高了 117%,而蠕变变形则降低了约 40%。虽然 PS20SIBS-5CNT 由于较小的 SIBS 粒子分散在 PS 基体中,其冲击强度低于 PS20SIBS 混合物,但仍比纯 PS 的冲击强度提高了 188%。PS20SIBS-5CNT 纳米复合材料提高了冲击强度和抗蠕变性,同时具有最佳的韧性和拉伸模量,可用作新型 HIPS 材料,有效调节硬度-韧性-冲击平衡。此外,研究还发现,与含有 3 phr 数 CNT 的纳米复合材料相比,该纳米复合材料的电阻率降低了 106 倍,达到了导电阈值,从而在系统中添加 5 phr 数的纳米管后形成了导电过滤网。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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