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一种具有直立梯度阻抗石墨烯薄膜的超宽带高效超材料吸波器。

An Ultra-Broadband and Highly-Efficient Metamaterial Absorber with Stand-Up Gradient Impedance Graphene Films.

作者信息

Wu Bian, Chen Biao, Ma Shuai, Zhang Ding, Zu Hao-Ran

机构信息

National Key Laboratory of Antennas and Microwave Technology, Xidian University, Xi'an 710071, China.

出版信息

Materials (Basel). 2023 Feb 15;16(4):1617. doi: 10.3390/ma16041617.

Abstract

Metamaterial absorbers (MMAs) that absorb electromagnetic waves among an ultra-broad frequency band have attracted great attention in military and civilian applications. In this paper, an ultra-broadband and highly-efficient MMA is presented. The unit cell of the proposed MMA was constructed with two cross-placed stand-up gradient impedance graphene films, which play a key role in improving impedance matching. Considering the trade-off between absorbing performance and processing complexity, in our design, we adopted the stand-up graphene films that have a gradient with three orders of magnitude in total. The simulated results of the proposed absorber show an ultra-broadband absorption (absorptivity > 90%) from 1.8 GHz to 66.7 GHz and a highly-efficient absorption (absorptivity > 97%) in the range of 2-21.7 GHz and 39.6-57 GHz. The field analysis was adopted to explain the mechanism of the proposed absorber. To validate this design, a prototype of 20 × 20 units was processed and assembled. The graphene films were processed with graphene conductive ink using screen print technology. The measured results are in good agreement with the simulated ones. The proposed absorber may find potential applications in the field of stealth technologies and electromagnetic interference.

摘要

在超宽带频段吸收电磁波的超材料吸波器(MMAs)在军事和民用应用中引起了极大关注。本文提出了一种超宽带高效MMAs。所提出的MMAs的单元结构由两个交叉放置的直立梯度阻抗石墨烯薄膜构成,这在改善阻抗匹配方面起着关键作用。考虑到吸收性能与加工复杂性之间的权衡,在我们的设计中,采用了总共具有三个数量级梯度的直立石墨烯薄膜。所提出的吸波器的模拟结果表明,其在1.8 GHz至66.7 GHz范围内具有超宽带吸收(吸收率>90%),在2 - 21.7 GHz和39.6 - 57 GHz范围内具有高效吸收(吸收率>97%)。采用场分析来解释所提出的吸波器的机理。为验证该设计,制作并组装了一个20×20单元的原型。使用丝网印刷技术用石墨烯导电油墨加工石墨烯薄膜。测量结果与模拟结果吻合良好。所提出的吸波器可能在隐身技术和电磁干扰领域找到潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3ee6/9962239/ff3911c2a400/materials-16-01617-g001.jpg

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