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首页> 外文期刊>IEEE journal of selected topics in quantum electronics >Active Broadband Manipulation of Terahertz Photonic Spin Based on Gyrotropic Pancharatnam-Berry Metasurface
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Active Broadband Manipulation of Terahertz Photonic Spin Based on Gyrotropic Pancharatnam-Berry Metasurface

机译:基于陀螺仪PANCHARATNAL-BERRY METASURFACE的Terahertz光子旋转的主动宽带操纵

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摘要

Controlling terahertz (THz) waves, especially the polarization state and deflection angle, is important in THz application systems. But most of conventional THz metasurfaces have limitations in efficiency and working bandwidth. Although Pancharatnam-Berry (P-B) metasurfaces shows excellent manipulation for the circular polarized (CP) waves (or called photonic spin states) without phase dispersion, there is still challenge in active controlling. Here, we developed a magnetically tunable gyrotropic P-B metasurface by combining the gyroelectric semiconductor InSb and the P-B elements, which obtain two important effects: One is the active photonic spin Hall effect, which controls the conversion between two CP states and the deflection in space. A broadband working frequency of 1.02 similar to 1.7 THz is obtained with the sweeping deflection angle from 36.6 degrees to 83.5 degrees and the highest efficiency of over 70%. The other is photonic spin filter effect, which reflects one CP state but absorb the other orthogonal CP state, realizing nonreciprocal absorption with the isolation of 24 dB. This active, high efficiency and broadband P-B metasurface opens a new way in manipulation of the THz wave propagation and polarization states in both space and frequency domains.
机译:控制太赫兹(THz)波,尤其是偏振态和偏转角,对于THz应用系统来说是重要的。但大多数传统的THz Metasurfaces都有效率和工作带宽的局限性。尽管PANCHARATNAM-BERRY(P-B)METASURFACES显示出对没有相位色散的圆极化(CP)波(或称为光子旋转状态)的优异操作,但在主动控制中仍存在挑战。这里,通过组合陀螺氧化半导体INSB和P-B元素,我们开发了一种磁性可调谐旋转P-B质量表面,该磁铁半导体INSB和P-B元素获得了两个重要效果:一个是主动光子旋转霍尔效应,其控制两个CP状态和空间中的偏转之间的转换。宽带工作频率为1.02,与1.7六号类似,扫描偏转角度从36.6度到83.5度,最高效率超过70%。另一个是光子旋转过滤器效果,其反射一个CP状态但吸收其他正交CP状态,实现了24dB的分离的非抗剖面吸收。这种有效,高效率和宽带P-B MEDasurface在两个空间和频域中操纵THz波传播和偏振状态的新方法。

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