4.8 Article

Graphene-Based Optically Transparent Metasurface Capable of Dual-Polarized Modulation for Electromagnetic Stealth

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 14, 期 27, 页码 31075-31084

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.2c04414

关键词

microwave absorption; tunable metasurface; graphene; optical transparency; flexible device

资金

  1. National Natural Science Foundation of China (NSFC) [62071291, 51777168]
  2. Center for Advanced Electronic Materials and Devices of Shanghai Jiao Tong University

向作者/读者索取更多资源

This paper proposes a design for an optically transparent and dynamically tunable microwave-absorbing metasurface that enables dual modulations independently for two orthogonal linearly polarized excitations. The tunability is achieved by an anisotropic meta-atom composed of patterned graphene structure with dynamic and independent control of electromagnetic responses. Experimental measurements and circuit modeling demonstrate the dual tunability and physical relation between graphene's sheet resistance and polarization-independent modulations. The proposed metasurface enhances multitasking stealth performance in complex scenarios and has potential applications in advanced solar energy devices.
Microwave stealth technology with optical transparency is of great significance for solar-powered aircrafts (e.g., satellites or unmanned aerial vehicles) in increasingly complex electromagnetic environments. By coating them with optically transparent absorbing materials or devices, these large-sized solar panels could avoid detection by radar while maintaining highly efficient collection of solar energy. However, conventional microwave-absorbing materials/devices for solar panels suffer from bulky volume and fixed stealth performance that significantly hinders their practicality or multifunctionality. Particularly, dynamic modulation of microwave absorption for dual polarization remains a challenge. In this paper, we propose the design, fabrication, and characterization of an optically transparent and dynamically tunable microwave-absorbing metasurface that enables dual modulations (amplitude and frequency) independently for two orthogonal linearly polarized excitations. The tunability of the proposed metasurface is guaranteed by an elaborately designed anisotropic meta-atom composed of a patterned graphene structure whose electromagnetic responses for different polarizations can be dynamically and independently controlled via bias voltages. The dual tunability in such a graphene-based absorbing metasurface is experimentally measured, which agrees well with those numerical results. We further build an equivalent lumped circuit model to analyze the physical relation between the tunable sheet resistance of graphene and the polarization-independent modulations of the metasurface. Taking into account the advantages of optical transparency and flexibility, the proposed microwave-absorbing metasurface significantly enhances the multitasking stealth performance in complex scenarios and has the potential for advanced solar energy devices.

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