研究目的
To present a new design strategy for fabricating self-filtering metasurfaces with pure signal light, addressing the issue of low transfer efficiency and noise from unmodulated light in conventional metasurfaces.
研究成果
The TRM design presents a beneficial strategy for fabricating metasurfaces with pure modulated wave, eliminating noise from the refracted wave due to the total reflection barrier. The design is insensitive to polarization and can be directly used, compatible with most metasurfaces. The meta-cavity device based on TRM shows potential for transfer efficiency enhancement, with experimental proof-of-principle showing an 83% improvement.
研究不足
The study primarily focuses on metallic metasurfaces in transmission mode, and the experimental verification is limited to specific wavelengths (808 nm and 405 nm). The theoretical enhancement in transfer efficiency (633%) has not been fully achieved experimentally.
1:Experimental Design and Method Selection:
The study employs a novel design strategy for metasurfaces to achieve pure modulated light by utilizing internal total reflection as a barrier to block unmodulated light. Finite-difference time-domain method (FDTD) is used for simulation.
2:Sample Selection and Data Sources:
Metasurfaces are fabricated using nanoslit antennas based on the geometrical phase, with Au film deposited on quartz substrate.
3:List of Experimental Equipment and Materials:
Equipment includes a focused ion beam for fabrication, a CCD camera for capturing output signals, and a laser diode as the light source. Materials include Au film and quartz substrate.
4:Experimental Procedures and Operational Workflow:
The metasurface is designed to meet three criteria for internal total reflection, fabricated, and then experimentally verified for its performance in reducing noise and enhancing transfer efficiency.
5:Data Analysis Methods:
The performance of the metasurface is analyzed through simulation and experimental results, focusing on noise reduction and transfer efficiency enhancement.
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