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宽带极化可重构频率选择表面设计

Broadband Polarization Reconfigurable Frequency-Selective Surface Design
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摘要 提出一种多功能可重构宽带频率选择表面,与传统的频率选择表面结构相比,该设计可以实现二阶滤波与极化旋转功能的可切换,并且对横电(TE)波和横磁(TM)波进行极化独立调控。首先基于等效电路模型,使用三层金属表面设计一个宽带二阶滤波结构,并利用PIN二极管控制TE和TM极化波的传输与屏蔽,达到极化独立调控的效果。接着在二阶滤波结构的基础上根据法布里-珀罗腔的基本原理,在中间层构造转换层来实现极化旋转的功能。在二阶滤波功能下,该结构能够在2.29~4.21 GHz内带通传输,相对带宽达59.1%。在极化旋转功能下,能够在1.87~4.48 GHz内实现线极化转交叉极化,极化转换率在90%以上的相对带宽为82.2%。基于这些特点,该技术在实现高透射率和宽带要求的多模天线罩方面具有良好的应用潜力,并且能够满足天线传输或者接收信号时对特定极化信号的需求。 Objective A frequency-selective surface(FSS),an artificial electromagnetic metamaterial,is a planar periodic structure extensively studied in various fields such as filters,absorbers,and polarization converters.However,most metasurfaces focus solely on single-function realization and cannot switch between harmonic functions.With the development of multifunction and intelligent devices,the static nature and narrow bandwidth of single-function FSS are inadequate for complex operational scenarios.Recently,attention has turned towards multifunctional switching FSS capable of dynamically altering their states.However,these FSSs can only switch between transmission and shielding,lacking the capability to regulate electromagnetic polarization characteristics and achieve independent polarization control.Therefore,we propose a multifunctional,reconfigurable wideband FSS.Compared to traditional frequency-selective surface structures,this design enables switching between second-order filtering and polarization rotation functions while independently controlling transverse electric(TE)and transverse magnetic(TM)waves polarization.These features render the technology promising for applications such as multi-mode radomes requiring high transmittance and broadband,and for meeting specific polarization signal requirements during antenna transmission and reception.Methods We introduce an electromagnetic metasurface capable of independent polarization control,enabling the switching between second-order filtering and polarization rotation.Based on the traditional FSS model,the structure employs mutually orthogonal feeding designs on its top and bottom layers,with a PIN diode constructing the conversion layer in the middle.When the top and bottom layer diodes align in the same direction and the middle layer diode is activated,the FSS structure generates C-L-C resonance to achieve second-order filtering.To enhance structural understanding,an equivalent circuit model based on the FSS structure validates the design’s accuracy.By configuring the top and bottom diodes in opposite directions and deactivating the middle layer diode,the structure forms a Fabry-Perot(FP)cavity,facilitating polarization conversion.Detailed analysis of the electromagnetic wave propagation path within the structure using the FP cavity model elucidates changes in electromagnetic wave polarization.Results and Discussions The structure effectively adjusts electromagnetic wave polarization,achieving second-order filtering and polarization conversion functions.It exhibits excellent shielding properties for one polarized wave while modulating another.Control over PIN diode activation and deactivation provides four independent operational modes(Fig.1),meeting modern communication requirements for functionality and adaptability.Each structural function demonstrates superior electromagnetic properties with high transmission efficiency,wide operating frequency bands(Fig.6),and robust angular stability.These attributes position,the proposed structure favorably for applications in spatial filtering,radomes,and other related fields.Conclusions In this paper,we propose a multifunctional,reconfigurable wideband FSS capable of switching between second-order filtering and polarization rotation functions while independently controlling TE and TM waves.Utilizing an equivalent circuit model,the design achieves wideband second-order filtering through a three-layer metal surface,employing PIN diodes to control TE and TM polarized wave transmission and shielding for independent polarization control.Building upon the second-order filter structure,a conversion layer in the middle layer facilitates polarization rotation based on FP cavity principles.Under second-order filtering,the structure achieves passband transmission from 2.29‒4.21 GHz with a 59.1%relative bandwidth.For polarization rotation,linear to cross-polarization conversion spans 1.87‒4.48 GHz,achieving an 82.2%relative bandwidth with polarization conversion rates exceeding 90%.These capabilities highlight the technology’s potential for multi-mode radomes with high transmittance and broadband needs,catering to specific polarized signal requirements during the antenna transmission and reception.
作者 王哲飞 李超 万发雨 曾庆生 傅佳辉 吴群 宋明歆 Wang Zhefei;Li Chao;Wan Fayu;Zeng Qingsheng;Fu Jiahui;Wu Qun;Song Mingxin(School of Electronic&Information Engineering,Nanjing University of Information Science&Technology,Nanjing 210044,Jiangsu,China;College of Astronautics,Nanjing University of Aeronautics and Astronautics,Nanjing 211106,Jiangsu,China;School of Electronics and Information Engineering,Harbin Institute of Technology,Harbin 150001,Heilongjiang,China;College of Applied Technology,Hainan University,Danzhou 571737,Hainan,China)
出处 《光学学报》 EI CAS CSCD 北大核心 2024年第16期321-328,共8页 Acta Optica Sinica
基金 中国博士后科学基金面上项目(2023M732027) 江苏省科协青年科技人才托举工程(JSTJ-2023-XH034) 江苏省高等学校自然科学研究面上项目(23KJB510011)。
关键词 表面光学 超材料 极化旋转 二阶滤波器 可重构极化 频率选择表面 optics at surfaces metamaterial polarization conversion second-order filter reconfigurable polarization frequency-selective surface
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