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Enhancing the Mechanical and Electrical Properties of Poly(Vinyl Chloride)-Based Conductive Nanocomposites by Zinc Oxide Nanorods

机译:通过氧化锌纳米棒提高聚(氯乙烯)的导电纳米复合材料的机械和电性能

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摘要

A simple approach to decorate multi-walled carbon nanotube (MWCNT)⁻reduced graphene oxide (RGO) hybrid nanoparticles with zinc oxide (ZnO) nanorods is developed to improve the electrical and mechanical properties of poly(vinyl chloride) (PVC)/MWCNT⁻RGO composites. The ZnO nanorods act as “joint„ in three-dimensional (3D) MWCNT⁻RGO networks and the hybrid particles strongly interact with PVC chains via p-π stacking, hydrogen bonds, and electrostatic interactions, which we confirmed by scanning electron microscopy (SEM) and Raman analysis. By introducing the ZnO nanorods, the RGO⁻ZnO⁻MWCNT hybrid particles increased 160% in capacitance compared with MWCNT⁻RGO hybrids. Moreover, the addition of RGO⁻ZnO⁻MWCNT to PVC resulted in the mechanical properties of PVC being enhanced by 30.8% for tensile strength and 60.9% for Young’s modulus at the loadings of 2.0 weight percent (wt.%) and 1.0 wt.%, respectively. Meanwhile, the electrical conductivity of PVC increased by 11 orders of magnitude, from 1 × 10−15 S/m to 1 × 10−4 S/m for MWCNT⁻ZnO⁻RGO loading at 5.0 wt.%.
机译:一种简单的方法来装饰多壁碳纳米管(MWCNT)的石墨烯氧化物(RGO)杂交纳米颗粒,具有氧化锌(ZnO)纳米棒(ZnO)纳米棒,以改善聚(氯乙烯)(PVC)/MWCNT⁻的电气和力学性能RGO复合材料。 ZnO纳米码作为三维(3D)MWCNT⁻NOW网络中的“关节”,并且通过P-π堆叠,氢键和静电相互作用强烈地与PVC链相互作用,我们通过扫描电子显微镜(SEM )和拉曼分析。通过引入ZnO纳米棒,与MWCNT⁻RGO杂交体相比,Rgo⁻Zno⁻mwcnt杂交颗粒在电容中增加了160%。此外,加入rgo⁻zno⁻mwcnt至pvc导致PVC的机械性能增强30.8%,用于抗拉强度,杨氏模量为2.0重量%(重量%)和1.0重量%。% , 分别。同时,PVC的电导率增加了11个数量级,从1×10-15 s / m至1×10-4 s / m,用于5.0重量%的mwcnt⁻znoərgo负载。%。

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