Qin Bing, Zhu Yining, Zhou Yiwei, Qiu Min, Li Qiang
State Key Laboratory of Modern Optical Instrumentation, College of Optical Science and Engineering, Zhejiang University, Hangzhou, 310027, China.
Key Laboratory of 3D Micro/Nano Fabrication and Characterization of Zhejiang Province, School of Engineering, Westlake University, 18 Shilongshan Road, Hangzhou, 310024, Zhejiang, China.
Light Sci Appl. 2023 Oct 4;12(1):246. doi: 10.1038/s41377-023-01287-z.
Advanced multispectral detection technologies have emerged as a significant threat to objects, necessitating the use of multiband camouflage. However, achieving effective camouflage and thermal management across the entire infrared spectrum, especially the short-wave infrared (SWIR) band, remains challenging. This paper proposes a multilayer wavelength-selective emitter that achieves effective camouflage across the entire infrared spectrum, including the near-infrared (NIR), SWIR, mid-wave infrared (MWIR), and long-wave infrared (LWIR) bands, as well as the visible (VIS) band. Furthermore, the emitter enables radiative heat dissipation in two non-atmospheric windows (2.5-3 μm and 5-8 μm). The emitter's properties are characterized by low emittance of 0.270/0.042/0.218 in the SWIR/MWIR/LWIR bands, and low reflectance of 0.129/0.281 in the VIS/NIR bands. Moreover, the high emittance of 0.742/0.473 in the two non-atmospheric windows ensures efficient radiative heat dissipation, which results in a temperature decrement of 14.4 °C compared to the Cr reference at 2000 W m input power density. This work highlights the role of solar radiance in camouflage, and provides a comprehensive guideline for developing multiband camouflage compatible with radiative heat dissipation, from the visible to LWIR.
先进的多光谱探测技术已成为对物体的重大威胁,因此需要使用多波段伪装。然而,要在整个红外光谱范围内,特别是在短波红外(SWIR)波段实现有效的伪装和热管理,仍然具有挑战性。本文提出了一种多层波长选择性发射体,它能在包括近红外(NIR)、SWIR、中波红外(MWIR)和长波红外(LWIR)波段以及可见光(VIS)波段在内的整个红外光谱范围内实现有效的伪装。此外,该发射体能在两个非大气窗口(2.5 - 3μm和5 - 8μm)进行辐射散热。该发射体的特性表现为在SWIR/MWIR/LWIR波段的发射率低至0.270/0.042/0.218,在VIS/NIR波段的反射率低至0.129/0.281。此外,在两个非大气窗口中的高发射率0.742/0.473确保了高效的辐射散热,与在2000 W m输入功率密度下的Cr参考相比,温度降低了14.4°C。这项工作突出了太阳辐射在伪装中的作用,并为开发从可见光到LWIR波段、与辐射散热兼容的多波段伪装提供了全面的指导方针。