Lee Jeongwoo, Lim Dahyun Daniel, Park Jinwoo, Lee Jaemin, Noh Dowon, Gu Grace X, Choi Wonjoon
School of Mechanical Engineering, Korea University, 02841, Seoul, Republic of Korea.
Department of Mechanical Engineering, University of California Berkeley, Berkeley, CA, 94720, USA.
Small. 2023 Dec;19(50):e2305005. doi: 10.1002/smll.202305005. Epub 2023 Sep 8.
Rationally engineered porous structures enable lightweight broadband electromagnetic (EM) wave absorbers for countering radar signals or mitigating EM interference between multiple components. However, the scalability of such structures has been hindered by their limited mechanical properties resulting from low density. Herein, an additively manufactured Kelvin foam-based EM wave absorber (KF-EMA) is reported that exhibits multifunctionality, namely EM wave absorption and light-weighted load-bearing structures with constant relative stiffness made possible using bending-dominated lattice structures. Based on tuning design parameters, such as the backbone structures and constituent materials, the proposed KF-EMA features a multilayered 3D-printed design with geometrically optimized KF structures made of carbon black-based backbone composites. The developed KF-EMA demonstrated an absorbance greater than 90% at frequencies ranging from 5.8 to 18 GHz (average EM wave absorption rates of 95.89% and maximum of 99.1% at 15.8 GHz), while the low-density structures of the absorber (≈200 kg m ) still maintained a compression index between the stiffness and relative density (n = 2) under compression. The design strategy paves the way for using metamaterials as mechanically reinforced EM wave absorbers that enable multifunctionality by optimizing unit-cell parameters through a single and low-density structure.
合理设计的多孔结构能够实现轻质宽带电磁(EM)波吸收器,用于对抗雷达信号或减轻多个组件之间的EM干扰。然而,此类结构的可扩展性受到其因低密度导致的有限机械性能的阻碍。在此,报道了一种增材制造的基于开尔文泡沫的EM波吸收器(KF-EMA),它具有多功能性,即EM波吸收以及使用以弯曲为主的晶格结构实现具有恒定相对刚度的轻质承重结构。基于调整设计参数,如骨架结构和组成材料,所提出的KF-EMA具有多层3D打印设计,其几何优化的KF结构由炭黑基骨架复合材料制成。所开发的KF-EMA在5.8至18 GHz频率范围内表现出大于90%的吸收率(在15.8 GHz时平均EM波吸收率为95.89%,最大值为99.1%),而吸收器的低密度结构(≈200 kg/m³)在压缩下仍保持刚度与相对密度之间的压缩指数(n = 2)。该设计策略为使用超材料作为机械增强的EM波吸收器铺平了道路,这种吸收器通过单一的低密度结构优化单元胞参数来实现多功能性。