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On the Synergistic Effect of Multi-Walled Carbon Nanotubes and Graphene Nanoplatelets to Enhance the Functional Properties of SLS 3D-Printed Elastomeric Structures

机译:关于多壁碳纳米管和石墨烯纳米孔的协同作用,增强SLS 3D印刷弹性体结构功能性能

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Elastomer-based porous structures realized by selective laser sintering (SLS) are emerging as a new class of attractive multifunctional materials. Herein, a thermoplastic polyurethane (TPU) powder for SLS was modified by 1 wt.% multi-walled carbon nanotube (MWCNTs) or a mixture of MWCNTs and graphene (GE) nanoparticles (70/30 wt / wt ) in order to investigate on both the synergistic effect provided by the two conductive nanostructured carbonaceous fillers and the correlation between formulation, morphology, and final properties of SLS printed porous structures. In detail, porous structures with a porosity ranging from 20% to 60% were designed using Diamond (D) and Gyroid (G) unit cells. Results showed that the carbonaceous fillers improve the thermal stability of the elastomeric matrix. Furthermore, the TPU/1 wt.% MWCNTs-GE-based porous structures exhibit excellent electrical conductivity and mechanical strength. In particular, all porous structures exhibit a robust negative piezoresistive behavior, as demonstrated from the gauge factor (GF) values that reach values of about ?13 at 8% strain. Furthermore, the G20 porous structures (20% of porosity) exhibit microwave absorption coefficients ranging from 0.70 to 0.91 in the 12–18 GHz region and close to 1 at THz frequencies (300 GHz–1 THz). Results show that the simultaneous presence of MWCNTs and GE brings a significant enhancement of specific functional properties of the porous structures, which are proposed as potential actuators with relevant electro-magnetic interference (EMI) shielding properties.
机译:通过选择性激光烧结(SLS)实现的弹性体的多孔结构是作为一种新型的有吸引力的多功能材料。在此,将用于SLS的热塑性聚氨酯(TPU)粉末由1重量%的多壁碳纳米管(MWCNT)或MWCNT和石墨烯(GE)纳米颗粒(70/30WT / WT)的混合物进行修饰,以便研究两种导电纳米结构碳质填料提供的协同效应以及SLS印刷多孔结构的配方,形态和最终性质之间的相关性。详细地,使用金刚石(D)和陀螺仪(G)单位细胞设计了孔隙率的多孔结构,范围为20%至60%。结果表明,碳质填料改善了弹性体基质的热稳定性。此外,TPU / 1wt.%MWCNTS-GE基多孔结构表现出优异的导电性和机械强度。特别地,所有多孔结构表现出稳健的负压阻性行为,如从8%菌株的达到约13的值的量因子(GF)值所示。此外,G20多孔结构(20%的孔隙率)在12-18GHz区域中表现出0.70至0.91的微波吸收系数,并且在THz频率(300GHz-1 THz)下接近1。结果表明,MWCNT和GE的同时存在具有多孔结构的特定功能性的显着提高,该特性提高了具有相关电磁干扰(EMI)屏蔽性能的潜在执行器。

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