取向铁磁颗粒诱导各向异性石墨烯/ PDMS复合材料的电学性能

ty10086 提交于 周三, 08/25/2021 - 15:37
文章英文标题
Electrical properties of anisotropic graphene/PDMS composites induced by aligned ferromagnetic particles
正文
石墨烯纳米片( GNP )是一种高长径比、导电性能优异的二维板状碳材料。它是导电聚合物复合材料( CPCs )最常用的填料之一,在柔性电极和传感器中具有潜在的应用前景。CPCs的电学性能特别取决于GNP网络的微观结构。当石墨烯浓度达到临界值时,CPCs的电导率跃变了几个数量级,定义为逾渗阈值。对于普通各向同性CPCs,逾渗阈值相对较高,导致力学性能和电学性能较差的性能较差。对齐石墨烯片是降低CPCs渗流阈值的有效方法。当外加磁场时,羰基铁颗粒( CIPs )容易取向形成链状结构。本工作将CIPs和GNPs与聚二甲基硅氧烷( PDMS )混合,在0.5   T的磁场下固化,CIPs的取向诱导PDMS中的GNPs在外加磁场下定向,产生各向异性结构。无论是各向同性还是各向异性结构的GNPs / PDMS复合材料都是以各种GNP浓度制备的。采用实验方法研究了GNPs / PDMS复合材料的微观结构和导电性能。结果表明,与各向同性复合材料( 0.85   vol % )相比,各向异性复合材料形成了各向异性石墨烯网络,渗流阈值为0.15   vol %。GNPs的排列显著降低了渗流阈值。进一步,提出了一种板格模型来揭示GNPs的排列方式对导电网络形成的影响。随着GNPs对位度的增加,逾渗阈值明显降低,这与实验结果一致。
文章内容(英文)
Graphene nanoplate (GNP) is a two-dimensional plate-like carbon material with high aspect ratio and excellent electrical conductivity. It is one of the most commonly used fillers for conductive polymer composites (CPCs), which have potential applications in flexible electrodes and sensors. The electrical properties of the CPCs particularly depend on the microstructure of GNP networks. The electrical conductivity of the CPCs leaps in several magnitude levels when the graphene concentration reaches a critical value, which is defined as the percolation threshold. For ordinary isotropic CPCs, the percolation threshold is relatively high, which leads to inferior performance with poor mechanical and electrical properties. Aligning the graphene plates is an effective method to reduce the percolation threshold of the CPCs. Carbonyl iron particles (CIPs) are easily aligned to form chain-like structures when a magnetic field is applied. In this work, CIPs and GNPs are mixed with polydimethylsiloxane (PDMS), and the hybrid is cured under a magnetic field of 0.5 T. The alignment of CIPs induces the GNPs in the PDMS to orientate in a certain direction under the applied magnetic field generating anisotropic structures. Both isotropic and anisotropic structured GNPs/PDMS composites are prepared with various GNP concentrations. The microstructure and electrical conductivity of the GNPs/PDMS composites are investigated by experimental methods. It is found that anisotropic graphene networks are formed and the percolation threshold of the anisotropic composites is 0.15 vol%, compared to that of the isotropic composites which is 0.85 vol%. The alignment of GNPs significantly reduces the percolation threshold. Furthermore, a plate lattice model is proposed to reveal the effect of the alignment of GNPs on the formation of conductive networks. With the increase of the alignment degree of GNPs, the percolation threshold decreases significantly, which is consistent with the experimental results.
来源出处
Journal|[J]Journal of Intelligent Material Systems and StructuresVolume 32, Issue 12. 2021. PP 1377-1385
谷歌学术影响力
[db:学术影响力]
DOI
https://doi.org/10.1177/1045389X20969864

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