对(聚对苯二甲酸三亚甲基酯)/氧化石墨烯/f-MWCNT 混合纳米复合材料的研究。

0 MATERIALS SCIENCE, MULTIDISCIPLINARY Discover nano Pub Date : 2024-01-30 DOI:10.1186/s11671-024-03966-1
Abjesh Prasad Rath, P Santhana Gopala Krishnan, Krishnan Kanny
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摘要

目前正在开发以自然资源为驱动力的生物工程塑料方法,以参与汽车、电力和其他行业的竞争。聚对苯二甲酸三甲酯(PTT)就是其中的一种,目前的研究选择它来制造一种先进的纳米复合材料。使用双螺杆微型合成器,制备了注塑成型的 PTT/氧化石墨烯(GO)/羧基功能化多壁碳纳米管(f-MWCNT)混合纳米复合材料。研究了 GO 和 f-MWCNT 增强对混合纳米复合材料热性能和机械性能的影响。GO 由石墨粉通过改进的 Hummer 法合成,MWCNT 在室温超声波浴中使用体积比为 3:1 的浓硫酸 (H2SO4) 和硝酸 (HNO3) 进行功能化。在所有配方中,研究都是在填充量恒定为 2 wt% 的条件下进行的。为了了解 PTT 与纳米填料之间的化学作用,使用了拉曼光谱;为了检查分散状态,使用了扫描电子显微镜(SEM)进行系统分析。与原始 PTT 相比,杂化纳米复合材料的吸水性、拉伸强度、弯曲强度和冲击强度都略有提高。研究还发现,GO 在提高杂化纳米复合材料的机械性能和 f-MWCNT 热性能方面的作用更为突出。GO(2-D)和 f-MWCNT(1-D)之间的三维几何桥接使杂化物更易分散,在不同应用中更有效。
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Studies on (polytrimethylene terephthalate)/graphene oxide/f-MWCNT hybrid nanocomposites.

Natural resource-driven approaches to bioengineering plastics are being developed to compete in the automobiles, power, and other sectors. Polytrimethylene terephthalate (PTT) is a particular of them, and it was chosen for the current investigation to build an advanced nanocomposite material. Using a twin-screw micro compounder, injection moulded PTT/Graphene-Oxide (GO)/Carboxyl functionalized Multiwall Carbon nanotube (f-MWCNT) hybrid nanocomposites were prepared. The impact of GO and f-MWCNT reinforcement on the composite's thermal and mechanical characteristics of hybrid nanocomposites was examined. GO was synthesized from the graphite powder by modified Hummer's method and MWCNTs were functionalized using the concentrated sulfuric acid (H2SO4) and nitric acid (HNO3) with a volume ratio of 3:1 in an ultrasonic bath at room temperature. In all formulations, the investigation was done at a constant filler amount of 2 wt%. To understand the chemical interaction between PTT and nanofiller, Raman spectroscopy was used and to examine the state of dispersion, scanning electron microscopy (SEM) was systematically analysed. In comparison to pristine PTT, the water absorption, tensile strength, flexural strength and impact strength of hybrid nanocomposites were improved marginally. It was also observed that GO has more prominent in increasing the mechanical properties of the hybrid and f-MWCNT in thermal properties. The 3-D geometrical bridge between GO (2-D) and f-MWCNT (1-D) made the hybrid more dispersible and effective for different applications.

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