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Essential Nanostructure Parameters to Govern Reinforcement and Functionality of Poly(lactic) Acid Nanocomposites with Graphene and Carbon Nanotubes for 3D Printing Application

机译:用于控制3D打印应用中石墨烯和碳纳米管的聚乳酸纳米复合材料的增强和功能的基本纳米结构参数

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摘要

Poly(lactic) acid nanocomposites filled with graphene nanoplatelets (GNPs) and multiwall carbon nanotubes (MWCNTs) are studied, varying the filler size, shape, and content within 1.5–12 wt.%. The effects of the intrinsic characteristics of nanofillers and structural organization of nanocomposites on mechanical, electrical, thermal, and electromagnetic properties enhancement are investigated. Three essential rheological parameters are identified, which determine rheology–structure–property relations in nanocomposites: the degree of dispersion, percolation threshold, and interfacial interactions. Above the percolation threshold, depending on the degree of dispersion, three structural organizations are observed in nanocomposites: homogeneous network (MWCNTs), segregated network (MWCNTs), and aggregated structure (GNPs). The rheological and structural parameters depend strongly on the type, size, shape, specific surface area, and functionalization of the fillers. Consequently, the homogeneous and segregated network structures resulted in a significant enhancement of tensile mechanical properties and a very low electrical percolation threshold, in contrast to the aggregated structure. The high filler density in the polymer and the low number of graphite walls in MWCNTs are found to be determinant for the remarkable shielding efficiency (close to 100%) of nanocomposites. Moreover, the 2D shaped GNPs predominantly enhance the thermal conductivity compared to the 1D shaped MWCNTs. The proposed essential structural parameters may be successfully used for the design of polymer nanocomposites with enhanced multifunctional properties for 3D printing applications.
机译:研究了填充有石墨烯纳米片(GNP)和多壁碳纳米管(MWCNT)的聚乳酸纳米复合材料,其填料尺寸,形状和含量在1.5至12 wt。%之间变化。研究了纳米填料的固有特性和纳米复合材料的结构组织对机械,电,热和电磁性能增强的影响。确定了三个基本的流变参数,这些参数决定了纳米复合材料的流变学-结构-性能关系:分散度,渗滤阈值和界面相互作用。高于渗透阈值,取决于分散程度,在纳米复合材料中观察到三个结构组织:同质网络(MWCNT),隔离网络(MWCNT)和聚集结构(GNP)。流变学和结构参数在很大程度上取决于填料的类型,大小,形状,比表面积和功能性。因此,与聚集的结构相比,均匀且分离的网络结构导致拉伸机械性能的显着增强和非常低的电渗漏阈值。发现聚合物中的高填料密度和MWCNT中石墨壁的数量少是决定纳米复合材料卓越的屏蔽效率(接近100%)的因素。此外,与1D形状的MWCNT相比,2D形状的GNP主要提高了热导率。所提出的基本结构参数可以成功地用于设计具有增强的3D打印应用程序多功能性能的聚合物纳米复合材料。

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