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用于宽带和自适应雷达隐身的气动结构变形以增强共振行为

Pneumatic Structural Deformation to Enhance Resonance Behavior for Broadband and Adaptive Radar Stealth.

作者信息

Liang Leilei, Li Chen, Yang Xiuyue, Chen Ziming, Zhang Baoshan, Yang Yi, Ji Guangbin

机构信息

School of Electronic Science and Engineering, Nanjing University, Nanjing 210093, People's Republic of China.

College of Materials Science and Technology, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, People's Republic of China.

出版信息

Nano Lett. 2024 Feb 28;24(8):2652-2660. doi: 10.1021/acs.nanolett.4c00153. Epub 2024 Feb 16.

Abstract

Ideal radar absorbing materials (RAMs) require instantaneous, programmable, and spontaneous adaptability to cope with a complex electromagnetic (EM) environment across the full working frequency. Despite various material systems and adaptive mechanisms having been demonstrated, it remains a formidable challenge to integrate these benefits simultaneously. Here, we present a pneumatic matrix that couples morphable MXene/elastomer conductors with dielectric spacers, which leverages controllable airflow to reconfigure the spatial structure between a flat sheet and a hemispherical crown while maintaining resistance stability via wrinkle folding and unfolding. The interdimensional reconfigurations drastically induce multiple resonance behavior, enabling the matrix remarkable frequency tunability (144.5%), ultrawide bandwidth (15 GHz), weak angular dependence (45° incidence), ultrafast responsiveness (∼30 ms), and excellent reproducibility (1000 cycles). With multichannel fluidic and conceptual automated control systems, the final pneumatic device demonstrates a multiplexed, programmable, and autonomous transformable mode that builds a promising platform for smart radar cloaking.

摘要

理想的雷达吸波材料(RAM)需要具备即时性、可编程性和自发适应性,以应对整个工作频率范围内复杂的电磁(EM)环境。尽管已经展示了各种材料系统和自适应机制,但要同时整合这些优势仍然是一项艰巨的挑战。在此,我们展示了一种气动矩阵,它将可变形的MXene/弹性体导体与介电间隔物相结合,利用可控气流重新配置平板和半球形冠之间的空间结构,同时通过褶皱的折叠和展开保持电阻稳定性。跨维度的重新配置极大地诱发了多重共振行为,使该矩阵具有显著的频率可调性(144.5%)、超宽带宽(15 GHz)、弱角度依赖性(45°入射角)、超快响应速度(约30毫秒)以及出色的可重复性(1000次循环)。借助多通道流体和概念性自动控制系统,最终的气动装置展示了一种多路复用、可编程且自主可转换的模式,为智能雷达隐身构建了一个很有前景的平台。

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