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Multilayered absorber over K-and Ka-band based on graded concentration of carbon nanofillers: Modeling, Fabrication, and Experimental validation

机译:基于碳纳米液的分级浓度的K-and Ka和Ka带的多层吸收器:建模,制造和实验验证

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In this paper, a thin wideband microwave absorber is modeled and validated experimentally between 18and40GHz. The absorber is built by stacking conductive nanocomposite slabs having graded concentrations of conductive carbon nanofillers in order to achieve a reflectivity below-10dB. These conductive composites are fabricated through blend compounding method using carbon nanotube (CNT) and graphene nanoplatelets (GNP) nanofillers loaded in a polycarbonate matrix. A systematic loading of nanofillers yields a hierarchical effect on nanocomposite permittivity and electrical conductivity, which are successfully modeled using Maxwell-Garnett formulation. It is shown that 1D and 2D geometry of nanofillers are individually and together influencing the real and imaginary parts of the permittivity and associated conductivity. This plays an important role to fabricate substrates having dedicated electromagnetic properties required for the design of efficient wideband absorbers, as demonstrated in this paper.
机译:在本文中,在180GHz之间通过实验建模和验证了薄的宽带微波吸收器。通过堆叠具有渐变碳纳米填料的导电纳米复合物板的导电纳米复合材料板构成,以实现低于-10dB的反射率。这些导电复合材料通过使用碳纳米管(CNT)和装载在聚碳酸酯基质中的碳纳米管(CNT)和石墨烯纳米填充物(GNP)纳米填充物来制造。纳米填充物的系统负载产生了纳米复合材料介电常数和电导率的分层效应,其使用Maxwell-Garnett配方成功建模。结果表明,纳米填料的1D和2D几何形状是单独的,并在一起影响介电常数和相关电导率的真实和虚部。这对本文所证明的,制造设计有效宽带吸收剂所需的专用电磁特性的基材起着重要作用。

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