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High-efficiency terahertz metasurface with independently controlled and switchable function in transmission and reflection modes

机译:高效太赫兹元面,具有独立控制和可切换功能的传输和反射模式

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摘要

Metasurfaces exhibit flexible functional tunability by importing phase change materials. However, in most cases, these metasurfaces work in either transmission mode or reflection mode, which limits the application in function integration. Aiming at functions integration, a novel metasurface is proposed to realize the invertible transition between transmission and reflection modes in terahertz (THz) frequencies by utilizing a structured vanadium dioxide (VO2). The wavefronts of the transmission and reflection modes can be independently manipulated according to the insulator-metal phase transition induced simply by the temperature, allowing the integration of expanded functions. As an example of the functionality, a highly efficient, polarization-independent, and bifunctional metasurface with a lens in the transmission mode and a half-wave plate in the reflection mode has been designed and numerically demonstrated. The focusing efficiency of the meta-lens reaches to 68% with focal spot size exceeding the calculated diffraction limit at frequency of 1.4 THz, and the polarization conversion rate of the half-wave plate is higher than 90% within frequency width of 0.44 THz. The proposed tunable metasurface provides a simple way to develop high-performance multifunctional metadevice.
机译:Metasurfaces通过导入相变材料表现出灵活的功能可调性。然而,在大多数情况下,这些元素措施在传输模式或反射模式下工作,这限制了功能集成中的应用。旨在集成功能,提出了一种新的元表面来实现通过利用结构化钒(VO2)来实现Terahertz(THz)频率中的变速器和反射模式之间的可逆转变。可以根据简单地通过温度诱导的绝缘体 - 金属相转变来独立地操纵变速器和反射模式,允许膨胀功能的整合。作为功​​能的示例,已经设计了具有在传输模式中的具有透镜的高效,极化独立的和双功能性质表面,并在反射模式下进行了反射模式的半波片。元透镜的聚焦效率达到68%,焦点尺寸超过1.4星频频率的计算衍射极限,半波片的偏振转换率高于90%在0.44至Ztz的频率宽度内。所提出的可调性元曲面提供了一种开发高性能多功能元的简单方法。

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  • 来源
    《Superlattices and microstructures》 |2020年第10期|106653.1-106653.7|共7页
  • 作者单位

    Sichuan University College of Electronics and Information Engineering Chengdu 610065 China;

    Sichuan University College of Electronics and Information Engineering Chengdu 610065 China;

    Sichuan University College of Electronics and Information Engineering Chengdu 610065 China;

    Sichuan University College of Electronics and Information Engineering Chengdu 610065 China;

    Sichuan University College of Electronics and Information Engineering Chengdu 610065 China;

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