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Synergy in Binary (MWNT SLG) Nano-Carbons in Polymer Nano-Composites: A Raman Study

机译:协同作用在二进制(mWNTsLG)纳米碳在聚合物纳米复合材料:拉曼研究

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摘要

Load transfer and mechanical strength of reinforced polymers are fundamental to developing advanced composites. This paper demonstrates enhanced load transfer and mechanical strength due to synergistic effects in binary mixtures of nano-carbon/polymer composites. Different compositional mixtures (always 1 wt. % total) of multi-wall carbon nanotubes (MWNTs) and single-layer graphene (SLG) were mixed in polydimethylsiloxane (PDMS), and effects on load transfer and mechanical strength were studied using Raman spectroscopy. Significant shifts in the G-bands were observed both in tension and compression for single as well binary nano-carbon counterparts in polymer composites. Small amounts of MWNT0.1 dispersed in SLG0.9/PDMS samples (subscripts represents weight percentage) reversed the sign of the Raman wavenumbers from positive to negative values demonstrating reversal of lattice stress. A wavenumber change from 10 cm−1 in compression to 10 cm−1 in tension, and an increase in elastic modulus of ~103% was observed for MWNT0.1SLG0.9/PDMS with applied uniaxial tension. Extensive scanning electron microscopy revealed the bridging of MWNT between two graphene plates in polymer composites. Mixing small amounts of MWNTs in SLG/PDMS eliminated the previously reported compressive deformation of SLG and significantly enhanced load transfer and mechanical strength of composites in tension. The orientation order of MWNT with application of uniaxial tensile strain directly affected the shift in Raman wavenumbers (2D band and G-band) and load transfer. It is observed that the cooperative behavior of binary nano-carbons in polymer composites resulted in enhanced load transfer and mechanical strength. Such binary compositions could be fundamental to developing advanced composites such as nano-carbon based mixed dimensional systems.
机译:增强聚合物的载荷传递和机械强度是开发高级复合材料的基础。本文证明了由于纳米碳/聚合物复合材料的二元混合物中的协同效应,增强了载荷传递和机械强度。将多壁碳纳米管(MWNTs)和单层石墨烯(SLG)的不同成分混合物(总重量百分比为1)混合在聚二甲基硅氧烷(PDMS)中,并使用拉曼光谱研究了对载荷传递和机械强度的影响。对于聚合物复合材料中的单个以及二元纳米碳对应物,在拉伸和压缩过程中均观察到了G带的明显变化。分散在SLG0.9 / PDMS样品中的少量MWNT0.1(下标表示重量百分比)使拉曼波数的符号从正值反转为负值,表明晶格应力反转。 MWNT0.1SLG0.9的波数从压缩的10 cm -1 变为张力的10 cm -1 ,并且弹性模量增加了约103%。 / PDMS施加单轴张力。广泛的扫描电子显微镜揭示了聚合物复合材料中两个石墨烯板之间的MWNT桥接。在SLG / PDMS中混合少量MWNT,消除了先前报道的SLG压缩变形,并显着提高了复合材料的拉伸强度和机械强度。施加单轴拉伸应变的MWNT的取向顺序直接影响拉曼波数(2D带和G带)的位移和载荷传递。观察到二元纳米碳在聚合物复合材料中的协同行为导致增强的载荷传递和机械强度。这种二元组合物可能是开发高级复合材料(例如基于纳米碳的混合尺寸系统)的基础。

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