Lai Wenwen, Wang Yan, He Junkun
School of Materials Science and Engineering, Wuhan Institute of Technology, Wuhan 430074, Hubei, China.
Polymers (Basel). 2020 May 27;12(6):1217. doi: 10.3390/polym12061217.
To obtain excellent electromagnetic wave (EMW) absorption materials, the design of microstructures has been considered as an effective method to adjust EMW absorption performance. Owing to its inherent capability of effectively fabricating materials with complex various structures, three-dimensional (3D) printing technology has been regarded as a powerful tool to design EMW absorbers with plentiful microstructures for the adjustment of EMW absorption performance. In this work, five samples with various microstructures were prepared via fused deposition modeling (FDM). An analysis method combining theoretical simulation calculations with experimental measurements was adopted to investigate EMW absorbing properties of all samples. The wood-pile-structural sample possessed wider effective absorption bandwidth (EAB; reflection loss (RL) < - 10 dB, for over 90% microwave absorption) of 5.43 GHz and generated more absorption bands (C-band and Ku-band) as compared to the honeycomb-structural sample at the same thickness. Designing various microstructures via FDM proved to be a convenient and feasible method to fabricate absorbers with tunable EMW absorption properties, which provides a novel path for the preparation of EMW absorption materials with wider EAB and lower RL.
为了获得优异的电磁波(EMW)吸收材料,微观结构设计被认为是一种调节EMW吸收性能的有效方法。由于其具有有效制造具有复杂多样结构材料的内在能力,三维(3D)打印技术被视为一种强大的工具,可用于设计具有丰富微观结构的EMW吸收体,以调节EMW吸收性能。在这项工作中,通过熔融沉积建模(FDM)制备了五个具有不同微观结构的样品。采用理论模拟计算与实验测量相结合的分析方法来研究所有样品的EMW吸收特性。与相同厚度的蜂窝结构样品相比,木堆结构样品具有更宽的有效吸收带宽(EAB;反射损耗(RL)< -10 dB,微波吸收率超过90%),为5.43 GHz,并且产生了更多的吸收带(C波段和Ku波段)。通过FDM设计各种微观结构被证明是一种方便可行的方法,可用于制造具有可调EMW吸收特性的吸收体,这为制备具有更宽EAB和更低RL的EMW吸收材料提供了一条新途径。