Properties of Acrylonitrile-Butadiene-Styrene nanocomposites adding ammonia plasma treated carbon nanotubes/graphene nanoplatelets for electronic discharge application

Sorawit Duangsripat, P. Patanathabutr, N. Hongsriphan
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Abstract

Carbon-based nanofillers have been applied in various products, especially electrical and electronic products. It could be used to modify electrical conductivity of the integrated circuit (IC) polymeric packaging in order to prevent electrostatic discharge that would damage electronic integrity. This research reported the influence of ammonia plasma functionalization and its concentration on electrical, mechanical and thermal properties of Acrylonitrile-Butadiene-Styrene (ABS) reinforced with a mixture of CNTs and GNPs. Nanocomposites were successfully compounded using a twin-screw extruder, which firstly the masterbatch was prepared and then mixed with neat polymer into various concentrations (2 wt%, 4 wt%, 6 wt%, and 8 wt%). It was found that ammonia plasma functionalization increased the dispersion of nanofillers in the ABS matrix. When using a hybrid nanofillers in the weight ratio of CNTs:GNPs 60:40, it was found that the percolation threshold could be reached with a nanofiller concentration of 4 wt%. The surface electrical resistivity of the NH3-functionalzed hybrid nanocomposites was reduced more than those adding the non-functionalized hybrid nanofillers. At this suitable weight ratio, tensile modulus of the CNT-NH3:GNP-NH3 60:40 of 2 wt%, 4 wt%, 6 wt%, and 8 wt% could enhance the tensile modulus of ABS to be 35.98%, 38.29%, 43.54%, and 45.48% higher than that of neat ABS, respectively. Interestingly, the nanocomposites still had the ultimate tensile strength presented at yield with higher values. In addition, the NH3-plasma functionalized nanofillers enhanced thermal conductivity of the ABS matrix much better than the non-functionalized ones, which these nanofillers could provide heat transfer by heat dissipation thoroughly in the polymer matrix.
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添加氨等离子处理碳纳米管/石墨烯纳米片的丙烯腈-丁二烯-苯乙烯纳米复合材料的性能,用于电子放电应用
碳基纳米填料已被应用于各种产品,尤其是电子电气产品。它可用于改变集成电路(IC)聚合物封装的导电性,以防止静电放电破坏电子完整性。本研究报告了氨等离子体功能化及其浓度对使用 CNTs 和 GNPs 混合物增强丙烯腈-丁二烯-苯乙烯(ABS)的电气、机械和热性能的影响。首先制备母料,然后将母料与不同浓度(2 wt%、4 wt%、6 wt% 和 8 wt%)的纯聚合物混合,使用双螺杆挤出机成功混配出纳米复合材料。研究发现,氨等离子功能化增加了纳米填料在 ABS 基质中的分散。当使用重量比为 CNTs:GNPs 60:40 的混合纳米填料时,发现纳米填料浓度为 4 wt%时可以达到渗流阈值。与添加非官能化混合纳米填料的纳米复合材料相比,NH3 官能化混合纳米复合材料的表面电阻率降低得更多。在此合适的重量比下,CNT-NH3:GNP-NH3 60:40 的拉伸模量分别为 2 wt%、4 wt%、6 wt% 和 8 wt%,可使 ABS 的拉伸模量分别提高 35.98%、38.29%、43.54% 和 45.48%。有趣的是,纳米复合材料的屈服极限拉伸强度仍然较高。此外,NH3-等离子体功能化纳米填料比非功能化纳米填料更好地增强了 ABS 基体的导热性,这些纳米填料可以通过在聚合物基体中彻底散热来实现热传递。
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