Near-Perfect Linear Terahertz Polarization Converter Design Based on Multi-Objective Optimization Algorithm
Проектирование почти идеального линейного терагерцевого преобразователя поляризации на основе алгоритма многокритериальной оптимизации
2025-03-04
SCID: 54.1/rgfcset9
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Fabry-Pérot resonancemulti-objective particle swarm optimizationmultilayer metasurfaceterahertz polarization convertertime-domain terahertz spectroscopy
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Abstract (AI)
Polarization conversion is an important technique for converting the polarization state of electromagnetic waves. Based on the Fabry-Pérot (F-P) resonance enhancement in a multilayer metasurface structure, the reverse design of a broadband, highly-efficient and adjustable terahertz polarization converter using a multi-objective particle swarm optimization algorithm is demonstrated. The device is composed of three layers of metasurfaces cascaded together. The outer two layers are a pair of orthogonal grating structures, the middle layer is a sawtooth grating structure with a 45° angle to both sides of the grating, and the medium between the layers is air. Single-layer metasurfaces were prepared using femtosecond laser micro-machining, assembled through a cage structure, and the interlayer spacing was adjusted using two precision translation stages. The device was characterized using time-domain terahertz spectroscopy, and the experimental results were highly consistent with simulations, with a conversion efficiency of over 90%. In addition, the operating frequency of the device can be changed by adjusting the interlayer spacing. The F-P interference effect in the triple-layer structure plays a major role in the excellent characteristics of this device. The device structure can be used in the design of other adjustable/reconfigurable optical devices.
Key Findings
1
A broadband, highly efficient, adjustable terahertz linear polarization converter was designed using multi-objective particle swarm optimization.
2
Changing the interlayer spacing tunes the device operating frequency, enabling adjustable terahertz polarization conversion.
3
Experiments agreed closely with simulations and achieved polarization conversion efficiency exceeding 90%.
4
Fabry–Pérot interference in the triple-layer structure is identified as the main mechanism behind the device’s high performance.
5
The converter uses three cascaded metasurface layers: orthogonal outer gratings and a 45° sawtooth middle grating separated by air.
Research Object
Three-layer terahertz metasurface polarization converter with cascaded orthogonal and sawtooth gratings
Research Subject
Broadband, high-efficiency, and tunable linear polarization conversion enabled by Fabry–Pérot resonance and adjustable interlayer spacing
Publication Details
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2025-03-04
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