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基于多层石墨烯的光学可调太赫兹手性超表面

Optically tunable terahertz chiral metasurface based on multi-layered graphene.

作者信息

Masyukov Maxim, Vozianova Anna, Grebenchukov Alexander, Gubaidullina Kseniya, Zaitsev Anton, Khodzitsky Mikhail

机构信息

Terahertz Biomedicine Laboratory, ITMO University, St. Petersburg, 199034, Russia.

International Scientific and Research Institute of Bioengineering, ITMO University, St. Petersburg, 197101, Russia.

出版信息

Sci Rep. 2020 Feb 21;10(1):3157. doi: 10.1038/s41598-020-60097-0.

Abstract

Active manipulation of the polarization states at terahertz frequencies is crucially helpful for polarization-sensitive spectroscopy, having significant applications such as non-contact Hall measurements, vibrational circular dichroism measurements and anisotropy imaging. The weakness of polarization manipulation provided by natural materials can be overcomed by chiral metamaterials. Chiral metamaterials have a huge potential to achieve the necessary polarization effects, hence they provide the basis for applications such as ultracompact polarization components. Terahertz chiral metamaterials that allow dynamic polarization modulation of terahertz waves are of great practical interest and still challenging. Here, we show that terahertz metasurface based on the four conjugated "petal" resonators integrated with multi-layered graphene (MLG) can enable dynamically tunable chiroptical response using optical pumping. In particular, a change of ellipticity angle of 20° is observed around 0.76 THz under optical pumping by a 980 nm continuous wave (CW) laser. Furthermore, using temporal coupled-mode theory, our study also reveals that the chiroptical response of the proposed multi-layered graphene-based metasurface is strongly dependent on the influence of optical pumping on the loss parameters of resonance modes, leading to actively controllable polarization states of the transmitted terahertz waves. The present work paves the way for the realization of fundamental terahertz components capable for active polarization manipulation.

摘要

在太赫兹频率下对偏振态进行主动操控对于偏振敏感光谱至关重要,在非接触霍尔测量、振动圆二色性测量和各向异性成像等重要应用中具有重要意义。天然材料提供的偏振操控能力较弱,而手性超材料可以克服这一弱点。手性超材料具有实现所需偏振效应的巨大潜力,因此为超紧凑型偏振组件等应用提供了基础。能够对太赫兹波进行动态偏振调制的太赫兹手性超材料具有重大的实际意义,但仍具有挑战性。在此,我们展示了基于与多层石墨烯(MLG)集成的四个共轭“花瓣”谐振器的太赫兹超表面,通过光泵浦能够实现动态可调的旋光响应。特别是,在980 nm连续波(CW)激光的光泵浦下,在0.76 THz附近观察到椭圆率角变化了20°。此外,利用时间耦合模理论,我们的研究还表明,所提出的基于多层石墨烯的超表面的旋光响应强烈依赖于光泵浦对共振模式损耗参数的影响,从而导致透射太赫兹波的偏振态可主动控制。本工作为实现能够进行主动偏振操控的基础太赫兹组件铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/66fe/7035278/7a70e786b02f/41598_2020_60097_Fig1_HTML.jpg

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