Multifunctional terahertz metasurface for broadband absorption and wavefront manipulation based on graphene and vanadium dioxide

IF 4.3 3区 材料科学 Q2 MATERIALS SCIENCE, COATINGS & FILMS
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Abstract

A multifunctional terahertz (THz) metasurface for broadband absorption and wavefront manipulation based on graphene and vanadium dioxide (VO2) is proposed in this paper. While VO2 is in the metallic state, a broadband absorber is obtained. The bandwidth of over 90 % absorption rate is 1.11 THz. By adjusting graphene Fermi level, absorption bandwidth dynamical tunning is realized. The modulation depth for bandwidth tuning is 64 %, and the drift of center frequency is slight. Also, an equivalent circuit model is explored to explain the absorption mechanism. While VO2 is in the insulating state, the metasurface acts as a deflected vortex beam generator. Based on the convolutional operations, the functionalities of deflector and spiral phase plate are integrated into the proposed metasurface. Through precise phase arrangement based on the rotation angle of the metal resonator, arbitrary manipulation of transmitted vortex beams can be performed in the range of 0.75–0.85 THz. We also develop a 1D focusing metalen operating at different frequencies, which exhibits remarkable subwavelength focusing capabilities. Thus, multifuncitons including broadband absorption, beam deflection, vortex beam generation, and focusing metalen are integrated into one single metasurface successfully. It holds the great potential in diverse applications, such as optical stealth, beam generation, and holographic technique in the future.

Abstract Image

基于石墨烯和二氧化钒的用于宽带吸收和波前操纵的多功能太赫兹元表面
本文提出了一种基于石墨烯和二氧化钒(VO2)的多功能太赫兹(THz)元表面,用于宽带吸收和波前操纵。当二氧化钒处于金属态时,可获得宽带吸收器。吸收率超过 90% 的带宽为 1.11 太赫兹。通过调节石墨烯费米级,可实现吸收带宽的动态调节。带宽调谐的调制深度为 64%,中心频率漂移很小。此外,还探索了一个等效电路模型来解释吸收机制。当 VO2 处于绝缘状态时,元表面就像一个偏转的涡旋光束发生器。基于卷积运算,偏转器和螺旋相位板的功能被集成到了所提出的元表面中。通过基于金属谐振器旋转角度的精确相位排列,可以在 0.75-0.85 太赫兹范围内任意操纵传输的涡旋光束。我们还开发了一种在不同频率下工作的一维聚焦金属膜,它具有显著的亚波长聚焦能力。因此,包括宽带吸收、光束偏转、漩涡束产生和聚焦金属膜在内的多信子成功地集成到了一个单一的元表面中。它在未来的光学隐形、光束生成和全息技术等多种应用领域具有巨大潜力。
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来源期刊
Diamond and Related Materials
Diamond and Related Materials 工程技术-材料科学:综合
CiteScore
6.00
自引率
14.60%
发文量
702
审稿时长
2.1 months
期刊介绍: DRM is a leading international journal that publishes new fundamental and applied research on all forms of diamond, the integration of diamond with other advanced materials and development of technologies exploiting diamond. The synthesis, characterization and processing of single crystal diamond, polycrystalline films, nanodiamond powders and heterostructures with other advanced materials are encouraged topics for technical and review articles. In addition to diamond, the journal publishes manuscripts on the synthesis, characterization and application of other related materials including diamond-like carbons, carbon nanotubes, graphene, and boron and carbon nitrides. Articles are sought on the chemical functionalization of diamond and related materials as well as their use in electrochemistry, energy storage and conversion, chemical and biological sensing, imaging, thermal management, photonic and quantum applications, electron emission and electronic devices. The International Conference on Diamond and Carbon Materials has evolved into the largest and most well attended forum in the field of diamond, providing a forum to showcase the latest results in the science and technology of diamond and other carbon materials such as carbon nanotubes, graphene, and diamond-like carbon. Run annually in association with Diamond and Related Materials the conference provides junior and established researchers the opportunity to exchange the latest results ranging from fundamental physical and chemical concepts to applied research focusing on the next generation carbon-based devices.
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