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热塑性弹性体聚合物复合材料的物理化学和机电性能对含碳填料类型及含量的依赖性

Carbonaceous Filler Type and Content Dependence of the Physical-Chemical and Electromechanical Properties of Thermoplastic Elastomer Polymer Composites.

作者信息

Dios Jose Ramon, García-Astrain Clara, Costa Pedro, Viana Júlio César, Lanceros-Méndez Senentxu

机构信息

GAIKER, Parque Tecnológico, Ed 202, 48170 Zamudio, Spain.

BCMaterials, Basque Center for Materials, Applications and Nanostructures, UPV/EHU Science Park, 48940 Leioa, Spain.

出版信息

Materials (Basel). 2019 Apr 30;12(9):1405. doi: 10.3390/ma12091405.

Abstract

Graphene, carbon nanotubes (CNT), and carbon nanofibers (CNF) are the most studied nanocarbonaceous fillers for polymer-based composite fabrication due to their excellent overall properties. The combination of thermoplastic elastomers with excellent mechanical properties (e.g., styrene-b-(ethylene-co-butylene)-b-styrene (SEBS)) and conductive nanofillers such as those mentioned previously opens the way to the preparation of multifunctional materials for large-strain (up to 10% or even above) sensor applications. This work reports on the influence of different nanofillers (CNT, CNF, and graphene) on the properties of a SEBS matrix. It is shown that the overall properties of the composites depend on filler type and content, with special influence on the electrical properties. CNT/SEBS composites presented a percolation threshold near 1 wt.% filler content, whereas CNF and graphene-based composites showed a percolation threshold above 5 wt.%. Maximum strain remained similar for most filler types and contents, except for the largest filler contents (1 wt.% or more) in graphene (G)/SEBS composites, showing a reduction from 600% for SEBS to 150% for 5G/SEBS. Electromechanical properties of CNT/SEBS composite for strains up to 10% showed a gauge factor (GF) varying from 2 to 2.5 for different applied strains. The electrical conductivity of the G and CNF composites at up to 5 wt.% filler content was not suitable for the development of piezoresistive sensing materials. We performed thermal ageing at 120 °C for 1, 24, and 72 h for SEBS and its composites with 5 wt.% nanofiller content in order to evaluate the stability of the material properties for high-temperature applications. The mechanical, thermal, and chemical properties of SEBS and the composites were identical to those of pristine composites, but the electrical conductivity decreased by near one order of magnitude and the GF decreased to values between 0.5 and 1 in aged CNT/SEBS composites. Thus, the materials can still be used as large-deformation sensors, but the reduction of both electrical and electromechanical response has to be considered.

摘要

由于其优异的综合性能,石墨烯、碳纳米管(CNT)和碳纳米纤维(CNF)是聚合物基复合材料制造中研究最多的纳米碳质填料。具有优异机械性能的热塑性弹性体(如苯乙烯 - b -(乙烯 - 共 - 丁烯)- b - 苯乙烯(SEBS))与上述导电纳米填料的结合,为制备用于大应变(高达10%甚至更高)传感器应用的多功能材料开辟了道路。这项工作报道了不同纳米填料(CNT、CNF和石墨烯)对SEBS基体性能的影响。结果表明,复合材料的综合性能取决于填料类型和含量,对电性能有特殊影响。CNT/SEBS复合材料在填料含量接近1 wt.%时出现渗流阈值,而基于CNF和石墨烯的复合材料渗流阈值高于5 wt.%。除了石墨烯(G)/SEBS复合材料中最大填料含量(1 wt.%或更高)外,大多数填料类型和含量下的最大应变保持相似,从SEBS的600%降至5G/SEBS的150%。对于高达10%应变的CNT/SEBS复合材料,其机电性能显示,不同施加应变下的应变系数(GF)在2到2.5之间变化。在填料含量高达5 wt.%时,G和CNF复合材料的电导率不适合用于压阻传感材料的开发。为了评估材料性能在高温应用中的稳定性,我们对SEBS及其含5 wt.%纳米填料的复合材料在120℃下进行了1、24和72小时的热老化。SEBS及其复合材料的机械、热和化学性能与原始复合材料相同,但在老化的CNT/SEBS复合材料中,电导率下降了近一个数量级,GF降至0.5至1之间的值。因此,这些材料仍可用于大变形传感器,但必须考虑电和机电响应的降低。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4f13/6540253/f6c1f134f22c/materials-12-01405-g001.jpg

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