基于元材料的可见光频率范围元表面滤波器

Ali Soldoozy , Ilghar Rezaei , Masoud Soltani Zanjani , Hassan Sadrnia
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引用次数: 0

摘要

为了提高温室在特定栽培时期的光照效率,必须设计一种能有效过滤可见光绿色部分的元面罩。这种有针对性的过滤功能可实现对光谱的最佳控制,从而改善栽培条件并提高生产率。利用创新概念和先进方法,我们提出了一种旨在过滤可见光光谱绿色部分的高效元面设计。所提出的结构包括战略性放置在氧化硅基底两侧的石墨烯圆盘和圆环的周期性阵列。这种直接的涂层配置为温室和可控农业应用提供了实用的解决方案,有利于改善光管理和定制生长条件。通过两个独立的模拟路径,我们对所提出方法的有效性和准确性进行了研究。理论分析和模拟结果都表明,所提出的结构可以衰减可见光的绿色部分。事实证明,在开花期,过滤后的输出波对室内栽培非常有益,能更好地控制光照条件。设计方法依赖于等效电路模型和阻抗匹配标准。此外,还进行了全波仿真,以验证所采用建模的有效性。根据仿真结果,所提出的元表面能有效过滤可见光的绿色部分,同时允许红色光谱的传输。
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Meta-surface filter for visible frequency range based on meta-materials

To enhance the efficiency of exposure in greenhouses during specific cultivation periods, it is essential to design a meta-face that effectively filters the green part of visible light. This targeted filtering function will enable optimal control of the light spectrum, resulting in better cultivation conditions and increased productivity. Leveraging innovative concepts and advanced methods, a highly efficient meta-surface design aimed at filtering the green portion of the visible light spectrum is proposed. The proposed structure comprises periodic arrays of graphene disks and rings strategically positioned on both sides of a silicon oxide substrate. This straightforward coated layer configuration offers a practical solution for greenhouses and controlled agriculture applications, facilitating improved light management and tailored growth conditions. Through two separate simulation paths, the validity and accuracy of our proposed approach were investigated. Both theoretical analysis and simulation results demonstrate that the proposed structure attenuates the green part of visible light. Filtered output waves prove to be highly beneficial for indoor cultivation, during the flowering period, offering improved control over light conditions. The design methodology relies on an equivalent circuit model and impedance matching criteria. Additionally, full-wave simulation is performed to verify the effectiveness of the employed modeling. According to the simulation results, the proposed meta-surface effectively filters the green part of visible light, while allowing the transmission of the red spectrum.

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