A coupled-mode-theory formulation for periodic multi-element metasurfaces in the presence of radiation losses

IF 2.7 3区 物理与天体物理 Q2 PHYSICS, APPLIED Journal of Applied Physics Pub Date : 2024-01-08 DOI:10.1063/5.0179442
Maria-Thaleia Passia, Traianos V. Yioultsis, Emmanouil E. Kriezis
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Abstract

We derive a coupled-mode theory (CMT) formulation for the fast analysis of periodic multi-element metasurfaces in the presence of radiation losses. Full-wave simulations of periodic multi-element metasurfaces are very time- and memory-consuming, especially as the size and complexity of the metasurface increase. The CMT formulation provides a considerably faster and efficient alternative. It results in a small system of equations with size equal to the number of supported resonator modes in the frequency range of interest, allowing to calculate the resonator mode amplitudes and, consequently, the metasurface response. Subsequently, we systematically derive analytical closed-form expressions for the coupling coefficients between two weakly coupled resonators in the presence of radiation losses and incorporate them into the CMT model, which is found important for the accurate description of the metasurface, while also providing insight into the underlying physics of complex metasurfaces. We validate the proposed formulation on benchmark examples of both metal- and dielectric-based metasurface absorbers (MSAs) by comparing the CMT results to spectral FEM simulations of the composing supercell. To further demonstrate the potential of the proposed formulation, as a proof of concept, we use the CMT to synthesize a larger optimized periodic multi-element MSA. A comprehensive comparison to full-wave FEM simulations of the composing supercell is included in terms of time and computational requirements, which shows that our method provides a valuable and efficient alternative solver for synthesizing complex metasurfaces.
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存在辐射损失的周期性多元素元表面的耦合模式理论公式
我们推导了一种耦合模式理论(CMT)公式,用于快速分析存在辐射损耗的周期性多元素元面。周期性多元素元面的全波模拟非常耗费时间和内存,尤其是当元面的尺寸和复杂性增加时。CMT 公式提供了一种速度更快、效率更高的替代方法。它产生了一个小的方程组,其大小等于相关频率范围内支持的谐振模式数,从而可以计算谐振模式振幅,进而计算元表面响应。随后,我们系统地推导出存在辐射损耗时两个弱耦合谐振器之间耦合系数的解析闭式表达式,并将其纳入 CMT 模型,这对于准确描述元表面非常重要,同时还能深入了解复杂元表面的基本物理原理。通过将 CMT 结果与组成超级电池的光谱有限元模拟结果进行比较,我们在基于金属和介质的元表面吸收器 (MSA) 的基准示例上验证了所提出的公式。为了进一步证明所提方案的潜力,作为概念验证,我们使用 CMT 合成了一个更大的优化周期性多元素 MSA。在时间和计算要求方面,我们对合成超级电池的全波有限元模拟进行了综合比较,结果表明我们的方法为合成复杂的元表面提供了一种有价值的高效替代求解器。
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来源期刊
Journal of Applied Physics
Journal of Applied Physics 物理-物理:应用
CiteScore
5.40
自引率
9.40%
发文量
1534
审稿时长
2.3 months
期刊介绍: The Journal of Applied Physics (JAP) is an influential international journal publishing significant new experimental and theoretical results of applied physics research. Topics covered in JAP are diverse and reflect the most current applied physics research, including: Dielectrics, ferroelectrics, and multiferroics- Electrical discharges, plasmas, and plasma-surface interactions- Emerging, interdisciplinary, and other fields of applied physics- Magnetism, spintronics, and superconductivity- Organic-Inorganic systems, including organic electronics- Photonics, plasmonics, photovoltaics, lasers, optical materials, and phenomena- Physics of devices and sensors- Physics of materials, including electrical, thermal, mechanical and other properties- Physics of matter under extreme conditions- Physics of nanoscale and low-dimensional systems, including atomic and quantum phenomena- Physics of semiconductors- Soft matter, fluids, and biophysics- Thin films, interfaces, and surfaces
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