Jiang Xinpeng, Zhang Zhaojian, Ma Hansi, Du Te, Luo Mingyu, Liu Dongqing, Yang Junbo
Opt Express. 2022 May 23;30(11):18250-18263. doi: 10.1364/OE.456791.
Infrared (IR) stealth with thermal management is highly desirable in military applications and astronomy. However, developing selective IR emitters with properties suitable for IR stealth and thermal management is challenging. In this study, we present the theoretical framework for a selective emitter based on an inverse-designed metasurface for IR stealth with thermal management. The emitter comprises an inverse-designed gold grating, a GeSbTe (GST) dielectric layer, and a gold reflective layer. The hat-like function, which describes an ideal thermal selective emitter, is involved in the inverse design algorithm. The emitter exhibits high performance in IR stealth with thermal management, with the low emissivity (ɛ =0.17; ɛ =0.16) for dual-band atmospheric transmission windows and high emissivity (ɛ =0.85) for non-atmospheric windows. Moreover, the proposed selective emitter can realize tunable control of thermal radiation in the wavelength range of 3-14 µm by changing the crystallization fraction of GST. In addition, the polarization-insensitive structure supports strong selective emission at large angles (60°). Thus, the selective emitter has potential for IR stealth, thermal imaging, and mid-infrared multifunctional equipment.
具有热管理功能的红外(IR)隐身技术在军事应用和天文学中极具吸引力。然而,开发具有适合红外隐身和热管理特性的选择性红外发射器具有挑战性。在本研究中,我们提出了一种基于逆设计超表面的选择性发射器的理论框架,用于具有热管理功能的红外隐身。该发射器由逆设计的金光栅、锗锑碲(GST)介电层和金反射层组成。逆设计算法中涉及描述理想热选择性发射器的帽状函数。该发射器在具有热管理功能的红外隐身方面表现出高性能,在双波段大气传输窗口具有低发射率(ɛ = 0.17;ɛ = 0.16),在非大气窗口具有高发射率(ɛ = 0.85)。此外,所提出的选择性发射器可以通过改变GST的结晶分数在3 - 14 µm波长范围内实现热辐射的可调控制。此外,这种偏振不敏感结构在大角度(60°)下支持强选择性发射。因此,该选择性发射器在红外隐身、热成像和中红外多功能设备方面具有潜力。