超材料
光学
微波食品加热
材料科学
带宽(计算)
电阻式触摸屏
透明度(行为)
可调谐超材料
超材料吸收剂
微波工程
光学滤波器
光电子学
吸收(声学)
光子超材料
可见光谱
变换光学
超材料隐身
微波应用
宽带
微波成像
材料选择
宽带
实现(概率)
工程物理
纳米光子学
纳米技术
光通信
制作
分裂环谐振器
雷
电子工程
电磁感应透明
超材料天线
微波加热
透射率
不透明度
光子学
微波传输
光学透明度
计算机科学
作者
Fu‐Yan Dong,Linda Shao,Chuanning Niu,Weiren Zhu
出处
期刊:Journal of Optics
[IOP Publishing]
日期:2025-03-05
卷期号:27 (4): 043004-043004
被引量:2
标识
DOI:10.1088/2040-8986/adbcc3
摘要
Abstract Optically transparent microwave absorbers based on metamaterials demonstrate exceptional microwave absorption performance while maintaining high optical transmittance, showcasing significant potential for applications in modern communication, defense, and architectural fields. Transparency in the visible light spectrum is primarily achieved through material selection and structural optimization. The artificially designed metamaterials based on transparent resistive films can be used to achieve devices with excellent wave absorption characteristics in the microwave frequency band. In this paper, we systematically review the research progress in the domain of optically transparent microwave metamaterial absorbers. We first introduce the implementation principles of optically transparent microwave metamaterial absorbers from the perspectives of transparency and wave absorption, laying the foundation for the in-depth discussions in subsequent sections. Subsequently, we focus on the research progress of optically transparent microwave metamaterial absorbers. In this paper, microwave metamaterial absorbers are classified into three types: passive absorbers, tunable absorbers and adaptive absorbers. Passive and tunable absorbers are further discussed based on their structural classifications. This paper summarizes the current research status and technical bottlenecks of optically transparent microwave absorbers while envisioning their extensive applications in stealth technology, wireless communication, and multifunctional devices. While challenges persist in balancing thickness, bandwidth and transmittance, future advancements in novel material, innovative structural designs, and manufacturing processes are expected to enable the realization of efficient, intelligent, multifunctional absorbers.
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