Zhao Meng, Zhu Huanzheng, Qin Bing, Zhu Rongxuan, Zhang Jihao, Ghosh Pintu, Wang Zuojia, Qiu Min, Li Qiang
State Key Laboratory of Extreme Photonics and Instrumentation, College of Optical Science and Engineering, Zhejiang University, Hangzhou, 310027, People's Republic of China.
College of Information Science and Electronic Engineering, Zhejiang University, Hangzhou, 310027, People's Republic of China.
Nanomicro Lett. 2025 Mar 24;17(1):199. doi: 10.1007/s40820-025-01712-5.
High-temperature stealth is vital for enhancing the concealment, survivability, and longevity of critical assets. However, achieving stealth across multiple infrared bands-particularly in the short-wave infrared (SWIR) band-along with microwave stealth and efficient thermal management at high temperatures, remains a significant challenge. Here, we propose a strategy that integrates an IR-selective emitter (Mo/Si multilayer films) and a microwave metasurface (TiB-AlO-TiB) to enable multi-infrared band stealth, encompassing mid-wave infrared (MWIR), long-wave infrared (LWIR), and SWIR bands, and microwave (X-band) stealth at 700 °C, with simultaneous radiative cooling in non-atmospheric window (5-8 μm). At 700 °C, the device exhibits low emissivity of 0.38/0.44/0.60 in the MWIR/LWIR/SWIR bands, reflection loss below - 3 dB in the X-band (9.6-12 GHz), and high emissivity of 0.82 in 5-8 μm range-corresponding to a cooling power of 9.57 kW m. Moreover, under an input power of 17.3 kW m-equivalent to the aerodynamic heating at Mach 2.2-the device demonstrates a temperature reduction of 72.4 °C compared to a conventional low-emissivity molybdenum surface at high temperatures. This work provides comprehensive guidance on high-temperature stealth design, with far-reaching implications for multispectral information processing and thermal management in extreme high-temperature environments.
高温隐身对于提高关键资产的隐蔽性、生存能力和使用寿命至关重要。然而,要在多个红外波段实现隐身,特别是在短波红外(SWIR)波段,同时实现微波隐身和高温下的高效热管理,仍然是一项重大挑战。在此,我们提出一种策略,将红外选择性发射器(Mo/Si多层膜)和微波超表面(TiB-AlO-TiB)集成在一起,以实现多红外波段隐身,包括中波红外(MWIR)、长波红外(LWIR)和SWIR波段,以及在700°C下的微波(X波段)隐身,并在非大气窗口(5-8μm)同时进行辐射冷却。在700°C时,该器件在MWIR/LWIR/SWIR波段的发射率分别为0.38/0.44/0.60,在X波段(9.6-12GHz)的反射损耗低于-3dB,在5-8μm范围内的发射率为0.82,对应的冷却功率为9.57kW m。此外,在17.3kW m的输入功率下(相当于2.2马赫数下的气动加热)——与传统的高温低发射率钼表面相比,该器件的温度降低了72.4°C。这项工作为高温隐身设计提供了全面的指导,对极端高温环境下的多光谱信息处理和热管理具有深远意义。