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一种受仿生介观结构启发的新型超宽带电磁波吸收超构体。

A Novel Ultra-Wideband Electromagnetic-Wave-Absorbing Metastructure Inspired by Bionic Gyroid Structures.

机构信息

School of Mechanical Engineering (SME), Nanjing University of Science and Technology, 200 Xiao Ling Wei Road, Nanjing, 210094, China.

Department of Aerospace and Mechanical Engineering, School for Engineering of Matter, Transport and Energy, Arizona State University, 501 E. Tyler Mall, Tempe, AZ, 85287, USA.

出版信息

Adv Mater. 2023 Jun;35(26):e2300659. doi: 10.1002/adma.202300659. Epub 2023 May 8.

Abstract

Traditional honeycomb-like structural electromagnetic (EM)-wave-absorbing materials have been widely used in various equipment as multifunctional materials. However, current EM-wave-absorbing materials are limited by narrow absorption bandwidths and incidence angles because of their anisotropic structural morphology. The work presented here proposes a novel EM-wave-absorbing metastructure with an isotropic morphology inspired by the gyroid microstructures seen in Parides sesostris butterfly wings. A matching redesign methodology between the material and subwavelength scale properties of the gyroid microstructure is proposed, inspired by the interaction mechanism between the microstructure and the material properties on the EM-wave-absorption performance of the prepared metastructure. The bioinspired metastructure is fabricated by additive manufacturing (AM) and subsequent coating through dipping processes, filled with dielectric lossy materials. Based on simulations and experiments, the metastructure designed in this work exhibits an ultrawide absorption bandwidth covering the frequency range of 2-40 GHz with a fractional bandwidth of 180% at normal incidence. Moreover, the metastructure has a stable frequency response when the incident angle is 60° under transverse electric (TE) and transverse magnetic (TM) polarization. Finally, the synergistic mechanism between the microstructure and the material is elucidated, which provides a new paradigm for the design of novel ultra-broadband EM-absorbing materials.

摘要

传统的蜂窝状结构电磁(EM)波吸收材料由于各向异性的结构形态,已经作为多功能材料被广泛应用于各种设备中。然而,目前的 EM 波吸收材料由于其各向异性的结构形态,吸收带宽和入射角都很有限。本工作受 Parides sesostris 蝴蝶翅膀中的准晶微观结构的启发,提出了一种具有各向同性形态的新型 EM 波吸收超结构。通过受微观结构和材料特性之间相互作用机制的启发,提出了材料与准晶微观结构亚波长尺度特性之间的匹配重新设计方法,这种相互作用机制对所制备的超结构的 EM 波吸收性能有影响。受生物启发的超结构通过增材制造(AM)和随后的浸涂工艺进行制造,并填充介电损耗材料。基于模拟和实验,本工作设计的超结构在正常入射时表现出超宽的吸收带宽,覆盖 2-40GHz 的频率范围,在 180%的分数带宽下,吸收带宽达到 180%。此外,在横向电场(TE)和横向磁场(TM)极化下,当入射角为 60°时,超结构具有稳定的频率响应。最后,阐明了微观结构和材料之间的协同机制,为新型超宽带 EM 吸收材料的设计提供了新的范例。

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