Zhang Yin, Feng Yijun, Zhu Bo, Zhao Junming, Jiang Tian
Opt Express. 2014 Sep 22;22(19):22743-52. doi: 10.1364/OE.22.022743.
Graphene can be utilized in designing tunable terahertz devices due to its tunability of sheet conductivity. In this paper, we combine the metamaterial having unit cell of cross-shaped metallic resonator with the double layer graphene wires to realize polarization independent absorber with spectral tuning at terahertz frequency. The absorption performance with a peak frequency tuning range of 15% and almost perfect peak absorption has been demonstrated by controlling the Fermi energy of the graphene that can be conveniently achieved by adjusting the bias voltage on the graphene double layers. The mechanism of the proposed absorber has been explored by a transmission line model and the tuning is explained by the changing of the effective inductance of the graphene wires under gate voltage biasing. Further more, we also propose a polarization modulation scheme of terahertz wave by applying similar polarization dependent absorbers. Through the proposed polarization modulator, it is able to electrically control the reflected wave with a linear polarization of continuously tunable azimuth angle of the major axis from 0° to 90° at the working frequency. These design approaches enable us to electrically control the absorption spectrum and the polarization state of terahertz waves more flexibly.
由于石墨烯的面电导率具有可调性,因此可用于设计可调太赫兹器件。在本文中,我们将具有十字形金属谐振器单元的超材料与双层石墨烯线相结合,以实现太赫兹频率下具有光谱调谐功能的偏振无关吸收器。通过控制石墨烯的费米能量,已证明其吸收性能具有15%的峰值频率调谐范围且几乎具有完美的峰值吸收,而这可通过调节双层石墨烯上的偏置电压方便地实现。通过传输线模型探索了所提出吸收器的机理,并通过栅极电压偏置下石墨烯线有效电感的变化来解释调谐过程。此外,我们还通过应用类似的偏振相关吸收器提出了一种太赫兹波的偏振调制方案。通过所提出的偏振调制器,能够在工作频率下以电方式控制反射波,其线性偏振的主轴方位角可在0°至90°之间连续可调。这些设计方法使我们能够更灵活地以电方式控制太赫兹波的吸收光谱和偏振状态。