Morphology-control synthesis of polyaniline decorative porous carbon with remarkable electromagnetic wave absorption capabilities

聚苯胺 材料科学 形态学(生物学) 吸收(声学) 复合材料 多孔性 复合数 碳纤维 多孔介质 电磁辐射 聚合物 光学 聚合 物理 生物 遗传学
作者
Feng Zhang,Wei Cui,Xiaodong Wang,Binghui Xu,Xiaohan Liu,Xuehua Liu,Zirui Jia,Guanglei Wu
出处
期刊:Composites Part B-engineering [Elsevier BV]
卷期号:204: 108491-108491 被引量:243
标识
DOI:10.1016/j.compositesb.2020.108491
摘要

Porous carbon materials have been widely reported on dealing with the electromagnetic (EM) wave interference. However, monotonous EM loss mechanism still performed an obstacle to achieve exceptional absorption. In this paper, a series of three-dimensional porous carbon·@PANI (polyaniline) composites were synthesized via facile roasting and subsequent coating process. The morphology, nanostructure and EM wave absorption properties of porous [email protected] ([email protected]) were discussed in detail. Obviously, porous carbon derived from EDTA-2Na coated by PANI ([email protected]) composites exhibited significantly enhanced EM wave absorption performance compared to pure porous carbon. The widest absorption bandwidth (RL < 10 dB) of the [email protected] could reach to 6.64 GHz (10.16–16.8 GHz) at 2.6 mm, and the minimum reflection loss (RLmin) at 2.6 mm was −72.16 dB. Compared with pure porous carbon materials, the composite material shows improved dielectric loss, such as interface polarization loss. After the polyaniline is coated, the conductivity loss of the composite material is sharply increased, so that the EM wave absorption capacity of the material is enhanced. The synthesized [email protected] can be used as the first choice for low-cost and environmentally friendly EM absorbers. In addition, this work can provide a reference for enriching the electromagnetic loss mechanism of the absorber.
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