Highly Visible–NIR Transparent Metamaterial‐Window for Broadband Microwave Absorption and Shielding

Author:

Zhang Yaqiang12,Li Haonan23,Ge Jiahao23,Zhang Chi1,Li Jingzhou1,Zhang Cheng12,Deng Ruixiang4,Zhang Yang5,Dong Hongxing12ORCID,Zhang Long12

Affiliation:

1. Hangzhou Institute for Advanced Study University of Chinese Academy of Sciences Hangzhou 310024 China

2. Key Laboratory of Materials for High‐Power Laser, Shanghai Institute of Optics and Fine Mechanics Chinese Academy of Sciences Shanghai 201800 China

3. Center for Materials Science and Optoelectronics Engineering University of Chinese Academy of Sciences Beijing 100049 China

4. Key Laboratory of Inorganic Coating Materials CAS Shanghai Institute of Ceramics Chinese Academy of Sciences (SICCAS) Shanghai 200050 China

5. Hangzhou Hengying Technology Co., Ltd Hangzhou 311400 China

Abstract

AbstractOptically transparent metamaterial absorbers have unexceptionally encountered a great challenge in further improving optical transparency ranging from visible (Vis) to near‐infrared (NIR) and environmental applicability, due to the limitations of constituent materials and multilayer structures. To overcome this limitation, a highly Vis‐NIR transparent metamaterial‐window with outstanding microwave broadband absorption and practical durability is proposed in this paper, which adopts a typical sandwich structure consisting of a cross‐ and cross‐ring‐shaped resonator and a reflective backplane, separated by a quartz glass. Experimental results indicate that the proposed metamaterial‐window achieves >80% absorptivity, covering a wide frequency range of 6.6–13.8 GHz with a relative bandwidth of 70.59%, while the measured shielding effectiveness is >16.94 dB, at 4.0–16.0 GHz. In addition, the corresponding physical mechanism is revealed by exploiting a classical multiple reflections interference model. More significantly, both the patterned resonator and backplane layers are formed by microscale gold meshes with high Vis‐NIR transmittance and environmental resistance, thereby enabling excellent salt spray corrosion resistance and high‐temperature stability, as well as an average optical transmittance of ≈87.35% at 400–1 800 nm. These advantages endow the design a promising candidate for addressing anti‐electromagnetic interference and electromagnetic shielding both in military and civilian.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Shanghai Municipality

Aeronautical Science Foundation of China

China Postdoctoral Science Foundation

Publisher

Wiley

Subject

Industrial and Manufacturing Engineering,Mechanics of Materials,General Materials Science

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