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首页> 外文期刊>Composites Science and Technology >Experimental and simulation study of effect of thickness on performance of (butylene adipate-co-terephthalate) and poly lactide nanocomposites incorporated with graphene as stand-alone electromagnetic interference shielding and metal-backed microwave absorbers
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Experimental and simulation study of effect of thickness on performance of (butylene adipate-co-terephthalate) and poly lactide nanocomposites incorporated with graphene as stand-alone electromagnetic interference shielding and metal-backed microwave absorbers

机译:厚度对(丁烯己二酸丁二醇酯)和聚丙交酯纳米复合材料的厚度效果的实验和仿真研究,作为石墨烯作为独立电磁干涉屏蔽和金属背衬微波吸收剂

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The dielectric properties induced by the presence of graphene nanoplatelets (GNP) in two polymeric matrices were measured experimentally and then used to predict their performances as both stand-alone shielding materials and metal-backed microwave absorbers. Periodic changes were observed in shielding effectiveness (SET), with smaller periods for nanocomposites with higher GNP contents but the fluctuations dampened and higher SET was achieved as the sample thickness increased. Simulations were carried out to determine the required graphene content in each matrix and the optimum sample thickness to achieve 99% radiation attenuation over the entire X-band frequency range. Polylactide (PLA) nanocomposites with 9-15 wt% GNPs outperformed their corresponding poly(butylene adipate-co-terephthalate) (PBAT) nanocomposites. This was investigated by analysing the contributions of the dielectric constant and dielectric loss to radiation attenuation and was found to be due to the relatively segregated dispersion quality of graphene in PLA as a result of weaker interfacial interactions. The nanocomposites performances as microwave absorbers were also studied with the highest absorption belonging to PLA at 6 wt% GNPs, achieving a reflection loss of -49.87 dB. In contrast, PLA with 12 wt% GNPs exhibited wider effective absorption bandwidths of 1.53 GHz and 450 MHz with 90% and 99% radiation absorptions, respectively. The produced graphene nanocomposites proved to be effective both as stand-alone and metal-backed microwave absorbers; while higher GNP contents provided better EMI shielding for stand-alone nanocomposites, moderate GNP loadings performed exceptionally in metal-backed absorbers.
机译:通过实验测量通过两种聚合物基质中的石墨烯纳米缩素(GNP)诱导的介电特性,然后用来预测其作为独立屏蔽材料和金属背衬微波吸收器的性能。在屏蔽有效性(设定)中观察到周期性变化,纳米复合材料具有较小的GNP含量,但随着样品厚度的增加,实现了抑制抑制和更高的设定的波动。进行模拟以确定每个基质中所需的石墨烯含量和最佳样品厚度,以在整个X波段频率范围内实现99%的辐射衰减。具有9-15wt%GNP的聚丙环(PLA)纳米复合材料优于它们相应的聚(丁烯己二酸丁二醇酯 - 对苯二甲酸酯)(PBAT)纳米复合材料。通过分析介电常数和介电损耗与辐射衰减的贡献来研究这一点,并且由于较弱的界面相互作用而导致PLA中石墨烯的相对分散质量。还研究了纳米复合材料作为微波吸收剂的性能,其具有在6wt%GNPS的最高吸收中,达到6wt%的GNPS,实现了-49.87dB的反射损失。相比之下,具有12wt%GNP的PLA表现出更宽的有效吸收带宽为1.53GHz和450MHz,分别具有90%和99%的辐射吸收。所生产的石墨烯纳米复合材料证明是单独的单独和金属背面的微波吸收剂有效;虽然更高的GNP内容提供了用于独立纳米复合材料的更好的EMI屏蔽,但在金属背衬吸收器中表达中等的GNP负载。

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