Ma Limin, Xu Han, Lu Zhengang, Tan Jiubin
College of Automation Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing 211100, People's Republic of China.
Nondestructive Detection and Monitoring Technology for High Speed Transportation Facilities, Key Laboratory of Ministry of Industry and Information Technology, Nanjing University of Aeronautics and Astronautics, Nanjing 211100, People's Republic of China.
ACS Appl Mater Interfaces. 2022 Apr 20;14(15):17727-17738. doi: 10.1021/acsami.1c24571. Epub 2022 Apr 7.
The demand for optically transparent microwave absorbers has attracted increasing interest among researchers in recent years. However, integrating broadband microwave absorption and high optical transparency remains a challenge. This report demonstrates a scheme for broadband microwave absorbers, featuring a 90% absorption bandwidth of 10 GHz covering a frequency range of 25.2-35.2 GHz and high compatibility with good optical transparency in a wide band from the visible to infrared. The absorber is based on a Jaumann structure composed of two graphene sheets sandwiched by dielectric and backed by an arrayed-metallic-rings sheet. Guided by derived formulas, this absorber exhibits complete absorption if the sheet resistance of graphene is close to 500 Ω sq. The bandwidth and center frequency of the absorption spectra can be readily tuned simply changes in the thickness of the dielectric between the graphene films and arrayed-metallic-rings sheet. Moreover, the absorber is insensitive to the incident angle of radiation and can achieve broadband and near-unity absorption even at oblique incidence. The graphene-based absorber proposed herein provides a viable solution for effectively integrating broadband and near-unity microwave absorption with high optical transparency, thereby enabling widespread applications in optics, communications, and solar cells.
近年来,对光学透明微波吸收体的需求引起了研究人员越来越浓厚的兴趣。然而,实现宽带微波吸收和高光学透明度仍然是一个挑战。本报告展示了一种宽带微波吸收体方案,其具有10 GHz的90%吸收带宽,覆盖25.2 - 35.2 GHz的频率范围,并且在从可见光到红外的宽波段内与良好的光学透明度具有高度兼容性。该吸收体基于一种约曼结构,由夹在电介质中间的两层石墨烯片和一层阵列金属环片作为背衬组成。根据推导公式,当石墨烯的方阻接近500 Ω/sq时,该吸收体表现出完全吸收。通过简单改变石墨烯薄膜与阵列金属环片之间电介质的厚度,吸收光谱的带宽和中心频率可以很容易地进行调整。此外,该吸收体对辐射入射角不敏感,即使在斜入射时也能实现宽带和近乎全吸收。本文提出的基于石墨烯的吸收体为有效整合宽带和近乎全吸收与高光学透明度提供了一种可行的解决方案,从而使其能够在光学、通信和太阳能电池等领域广泛应用。