TY - JOUR
T1 - Angle-insensitive multilayer metacoating with dual-band selective emission for infrared camouflage and radiative cooling
AU - Li, Liyan
AU - Zhou, Dongjie
AU - Zhang, Jinguo
AU - Zhou, Lei
AU - Chu, Junhao
AU - He, Qiong
AU - Hao, Jiaming
N1 - Publisher Copyright:
© 2025 The Author(s)
PY - 2025/12
Y1 - 2025/12
N2 - The mid-infrared (MIR) spectral region, covering the atmospheric transmission windows (ATWs) of 3–5 μm (mid-wavelength infrared, MWIR) and 8–13 μm (long-wavelength infrared, LWIR), is critical for applications such as infrared camouflage and radiative cooling due to its low atmospheric absorption. Here, we present a high-efficiency, deep-subwavelength multilayer metacoating (MMC) designed for dual-band emission in the MWIR and LWIR ATWs. Through selective impedance matching, the quad-layer MMC achieves average emissivities of 0.79 in the MWIR and 0.83 in the LWIR ATWs, while suppressing emissivity to 0.33 in the non-ATW range of 5–8 μm. Experimental results confirm these findings, which arise from electromagnetic localization within the multilayer architecture and dissipation in lossy materials (Ti and Cr). Notably, the emitter exhibits angle-insensitive performance, maintaining emissivities of 0.65 (MWIR) and 0.72 (LWIR) at incidence angles up to 70°, and demonstrates effective LWIR camouflage against high-emissivity backgrounds. Theoretical analysis further reveals its potential for nighttime radiative cooling. This work advances scalable, low-cost metacoatings for dual-functional infrared technologies, addressing key challenges in military signature management, thermal regulation, and energy-efficient aerospace systems.
AB - The mid-infrared (MIR) spectral region, covering the atmospheric transmission windows (ATWs) of 3–5 μm (mid-wavelength infrared, MWIR) and 8–13 μm (long-wavelength infrared, LWIR), is critical for applications such as infrared camouflage and radiative cooling due to its low atmospheric absorption. Here, we present a high-efficiency, deep-subwavelength multilayer metacoating (MMC) designed for dual-band emission in the MWIR and LWIR ATWs. Through selective impedance matching, the quad-layer MMC achieves average emissivities of 0.79 in the MWIR and 0.83 in the LWIR ATWs, while suppressing emissivity to 0.33 in the non-ATW range of 5–8 μm. Experimental results confirm these findings, which arise from electromagnetic localization within the multilayer architecture and dissipation in lossy materials (Ti and Cr). Notably, the emitter exhibits angle-insensitive performance, maintaining emissivities of 0.65 (MWIR) and 0.72 (LWIR) at incidence angles up to 70°, and demonstrates effective LWIR camouflage against high-emissivity backgrounds. Theoretical analysis further reveals its potential for nighttime radiative cooling. This work advances scalable, low-cost metacoatings for dual-functional infrared technologies, addressing key challenges in military signature management, thermal regulation, and energy-efficient aerospace systems.
KW - Dual-band selective emission
KW - Infrared camouflage
KW - Metacoating
KW - Radiative cooling
KW - Subwavelength
UR - https://www.scopus.com/pages/publications/105016462261
U2 - 10.1016/j.mtelec.2025.100177
DO - 10.1016/j.mtelec.2025.100177
M3 - 文章
AN - SCOPUS:105016462261
SN - 2772-9494
VL - 14
JO - Materials Today Electronics
JF - Materials Today Electronics
M1 - 100177
ER -