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基于飞秒激光加工的具有多波段兼容伪装功能的光学透明超材料发射器

Optical transparent metamaterial emitter with multiband compatible camouflage based on femtosecond laser processing.

作者信息

Zheng Shu-Wen, Chen Xiu-Yu, Huang Jin-Long, Yu Kun, Qian Meng-Dan, Liu Yu-Fang

机构信息

Hennan Key Laboratory of Infrared Spectrum Measures and Applications, School of Physics, Henan Normal University, Xinxiang, Henan 453007, China.

Institute of Physics, Henan Academy of Sciences, Zhengzhou, 450046, China.

出版信息

Nanophotonics. 2025 Mar 18;14(5):625-634. doi: 10.1515/nanoph-2024-0763. eCollection 2025 Mar.

Abstract

Infrared (IR) camouflage has garnered growing attention with progress in IR detection technology. The emergence of metamaterial with powerful electromagnetic field regulation ability provides an effective solution for thermal emission manipulation in IR camouflage. However, the intricated micro/nano machining technology of metamaterial greatly limits its moving toward practical application, and single-band IR camouflage makes it difficult to resist multiband cooperative detection systems. Here, a flexible, fine, and mask-free femtosecond laser direct writing (FsLDW) technology was introduced to pattern on ultra-thin metals. Based on this efficient technique, the optically transparent metamaterial emitter with multiband compatible camouflage is fabricated. The emitter is demonstrated to achieve high reflectance ( = 0.79 and = 0.70) in the dual-band atmospheric window and low reflectance ( = 0.3, = 0.1) for IR and laser stealth. In addition, the high emissivity ( = 0.64) for the nonatmospheric window effectively dissipates the accumulated heat, showing promising prospects in radiative cooling by comparison with Ag at the same heating power. This work offers a clue for coordinated control of multiband electromagnetic waves and heat through simple structural design, which is expected to promote its camouflage applications and thermal management in the military.

摘要

随着红外探测技术的进步,红外伪装越来越受到关注。具有强大电磁场调控能力的超材料的出现,为红外伪装中的热发射操控提供了一种有效解决方案。然而,超材料复杂的微纳加工技术极大地限制了其走向实际应用,并且单波段红外伪装难以抵御多波段协同探测系统。在此,引入了一种灵活、精细且无需掩膜的飞秒激光直写(FsLDW)技术,用于在超薄金属上进行图案化。基于这种高效技术,制备了具有多波段兼容伪装的光学透明超材料发射器。该发射器在双波段大气窗口实现了高反射率(分别为0.79和0.70),在红外和激光隐身方面实现了低反射率(分别为0.3和0.1)。此外,非大气窗口的高发射率(为0.64)有效地消散了积累的热量,与相同加热功率下的银相比,在辐射冷却方面显示出广阔前景。这项工作通过简单的结构设计为多波段电磁波和热量的协同控制提供了一条线索,有望推动其在军事领域的伪装应用和热管理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/65e7/11953717/d97c67554757/j_nanoph-2024-0763_fig_001.jpg

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