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Synergism in Binary (MWNT, SLG) Nano-carbons in Polymer Nano-composites: A Raman Study

机译:聚合物纳米复合材料中二元(MWNT,SLG)纳米碳的协同作用:拉曼研究

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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 MWNT_(0.1) dispersed in SLG_(0.9)/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 (-10% strain) to 10 cm~(-1) in tension (50% strain), and an increase in elastic modulus of ~103% was observed for MWNT_(0.1)SLG_(0.9)/PDMS with applied uniaxial tension. Presence of MWNTs in the matrix reduced the segmental polymeric chain length and provided limited extensibility to the chains. This in turn eliminated 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.
机译:增强聚合物的负荷转移和机械强度是开发先进复合材料的基础。本文表明,由于纳米碳/聚合物复合材料的二元混合物中的协同效应,增强了负载转移和机械强度。在聚二甲基硅氧烷(PDMS)中将不同的组成混合物(总共1重量%)的多壁碳纳米管(MWNT)和单层石墨烯(SLG)混合,并使用拉曼光谱研究对负载转移和机械强度的影响。在聚合物复合材料中的单一的二元纳米碳对应物中,在张力和压缩中观察到G沟带中的显着变化。分散在SLG_(0.9)/ PDMS样品中分散的少量MWNT_(0.1)(下标表示重量百分比)反转拉曼波兰人的迹象,从正到负值,证明晶格应力的逆转。波数在张力(50%菌株)中的压缩(-10%菌株)至10cm〜(-1)中的10cm〜(-1)变化,并且针对MWNT_观察到〜103%的弹性模量的增加( 0.1)SLG_(0.9)/ PDMS,具有施加的单轴张力。基质中的MWNT的存在降低了节段聚合物链长,并为链条提供了有限的可伸长性。这反过来消除了SLG的压缩变形,并显着提高了张力复合材料的负荷转移和机械强度。 MWNT与单轴拉伸菌株的定向顺序直接影响拉曼波数(2D带和G波段)和负载转移。观察到,在聚合物复合材料中二元纳米碳的协同行为导致负载转移和机械强度提高。这种二元组合物可能是开发先进复合材料的基础。

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