Li Hui, Yu Jiang
Opt Express. 2020 Aug 17;28(17):25225-25237. doi: 10.1364/OE.401992.
In this paper, we propose a terahertz bifunctional absorber with broadband and dual-band absorbing properties based on a hybrid graphene-vanadium dioxide (VO) metamaterial configuration. When VO is in the insulating state and the Fermi energy of graphene is set to 0.8 eV, the designed device behaves as a tunable perfect dual-band absorber. The operating bandwidth and magnitude of the dual-band spectrum can be continuously adjusted by changing the Fermi energy of graphene. When VO is changed from insulator to metal, the designed system can be regarded as a broadband absorber, it has a broad absorption band in the range of 1.45-4.37 THz, and the corresponding absorptance is more than 90%. The simulation results indicate that the absorptance can be dynamically changed from 17% to 99% by adjusting the conductivity of the VO when the Fermi energy of graphene is fixed at 0.01 eV. Besides, both dual absorption spectrum and broad absorption spectrum maintain a strong polarization-independent characteristic and operate well at wide incident angles. Furthermore, we have introduced the interference theory to explain the physical mechanism of the absorption from an optical method. Therefore, our designed system can be applied in many promising fields like cloaking and switch.
在本文中,我们基于石墨烯 - 二氧化钒(VO₂)混合超材料结构提出了一种具有宽带和双波段吸收特性的太赫兹双功能吸收器。当VO₂处于绝缘状态且石墨烯的费米能设定为0.8 eV时,所设计的器件表现为可调谐完美双波段吸收器。通过改变石墨烯的费米能,双波段光谱的工作带宽和幅度可以连续调节。当VO₂从绝缘体转变为金属时,所设计的系统可被视为宽带吸收器,它在1.45 - 4.37 THz范围内具有宽吸收带,且相应吸收率超过90%。模拟结果表明,当石墨烯的费米能固定在0.01 eV时,通过调节VO₂的电导率,吸收率可从17%动态变化到99%。此外,双吸收光谱和宽吸收光谱都保持强烈的偏振无关特性,并且在宽入射角下都能良好工作。此外,我们引入了干涉理论从光学方法角度解释吸收的物理机制。因此,我们所设计的系统可应用于许多有前景的领域,如隐身和开关。