Zhuo Shanshan, Liu Zhimin, Zhou Fengqi, Qin Yipeng, Luo Xin, Ji Cheng, Yang Guangxin, Yang Ruihan, Xie Yadong
Opt Express. 2022 Dec 19;30(26):47647-47658. doi: 10.1364/OE.476858.
This paper proposes a novel and perfect absorber based on patterned graphene and vanadium dioxide hybrid metamaterial, which can not only achieve wide-band perfect absorption and dual-channel absorption in the terahertz band, but also realize their conversion by adjusting the temperature to control the metallic or insulating phase of VO. Firstly, the absorption spectrum of the proposed structure is analyzed without graphene, where the absorption can reach as high as 100% at one frequency point (f = 5.956 THz) when VO is in the metal phase. What merits attention is that the addition of graphene above the structure enhances the almost 100% absorption from one frequency point (f = 5.956 THz) to a wide frequency band, in which the broadband width records 1.683 THz. Secondly, when VO is the insulating phase, the absorption of the metamaterial structure with graphene outperforms better, and two high absorption peaks are formed, logging 100% and 90.7% at f = 5.545 THz and f = 7.684 THz, respectively. Lastly, the adjustment of the Fermi level of graphene from 0.8 eV to 1.1 eV incurs an obvious blueshift of the absorption spectra, where an asynchronous optical switch can be achieved at fK = 5.782 THz and fK = 6.898 THz. Besides, the absorber exhibits polarization sensitivity at f = 5.545 THz, and polarization insensitivity at f = 7.684 THz with the shift in the polarization angle of incident light from 0° to 90°. Accordingly, this paper gives insights into the new method that increases the high absorption width, as well as the great potential in the multifunctional modulator.
本文提出了一种基于图案化石墨烯和二氧化钒混合超材料的新型完美吸收体,它不仅可以在太赫兹波段实现宽带完美吸收和双通道吸收,还可以通过调节温度来控制VO的金属相或绝缘相,从而实现两者之间的转换。首先,分析了无石墨烯时所提结构的吸收光谱,当VO处于金属相时,在一个频率点(f = 5.956太赫兹)处吸收可高达100%。值得注意的是,在结构上方添加石墨烯后,几乎100%的吸收从一个频率点(f = 5.956太赫兹)增强到了一个宽带,其带宽记录为1.683太赫兹。其次,当VO为绝缘相时,含石墨烯的超材料结构的吸收性能更好,形成了两个高吸收峰,在f = 5.545太赫兹和f = 7.684太赫兹处分别达到100%和90.7%。最后,将石墨烯的费米能级从0.8电子伏特调整到1.1电子伏特会导致吸收光谱明显蓝移,在fK = 5.782太赫兹和fK = 6.898太赫兹处可实现异步光开关。此外,该吸收体在f = 5.545太赫兹处表现出偏振敏感性,在f = 7.684太赫兹处随着入射光偏振角从0°到90°的变化表现出偏振不敏感性。因此,本文深入探讨了增加高吸收宽度的新方法以及在多功能调制器方面的巨大潜力。