超材料
太赫兹辐射
材料科学
光电子学
调制(音乐)
石墨烯
调幅
超材料吸收剂
电阻式触摸屏
光学
频率调制
物理
电信
纳米技术
电气工程
声学
计算机科学
带宽(计算)
工程类
可调谐超材料
作者
Ruqiao Xia,Nikita W. Almond,Wadood Tadbier,Stephen J. Kindness,Riccardo Degl’Innocenti,Yuezhen Lu,Abbie Lowe,B. P. Ramsay,Lukas A. Jakob,James Dann,Stephan Hofmann,Harvey E. Beere,S. A. Mikhaǐlov,D. A. Ritchie,Wladislaw Michailow
标识
DOI:10.1038/s41377-025-01945-4
摘要
Effective control of terahertz radiation requires fast and efficient modulators with a large modulation depth-a challenge that is often tackled by using metamaterials. Metamaterial-based active modulators can be created by placing graphene as a tuneable element shunting regions of high electric field confinement in metamaterials. However, in this common approach, the graphene is used as a variable resistor, and the modulation is achieved by resistive damping of the resonance. In combination with the finite conductivity of graphene due to its gapless nature, achieving 100% modulation depth using this approach remains challenging. Here, we embed nanoscale graphene capacitors within the gaps of the metamaterial resonators, and thus switch from a resistive damping to a capacitive tuning of the resonance. We further expand the optical modulation range by device excitation from its substrate side. As a result, we demonstrate terahertz modulators with over four orders of magnitude modulation depth (45.7 dB at 1.68 THz and 40.1 dB at 2.15 THz), and a reconfiguration speed of 30 MHz. These tuneable capacitance modulators are electrically controlled solid-state devices enabling unity modulation with graphene conductivities below 0.7 mS. The demonstrated approach can be applied to enhance modulation performance of any metamaterial-based modulator with a 2D electron gas. Our results open up new frontiers in the area of terahertz communications, real-time imaging, and wave-optical analogue computing.
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