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基于门控石墨烯岛的可调谐电荷转移等离子体太赫兹超调制器。

Gated graphene island-enabled tunable charge transfer plasmon terahertz metamodulator.

作者信息

Ahmadivand Arash, Gerislioglu Burak, Ramezani Zeinab

机构信息

Department of Physics & Astronomy, 6100 Main St, Rice University, Houston, Texas 77005, USA.

出版信息

Nanoscale. 2019 Apr 25;11(17):8091-8095. doi: 10.1039/c8nr10151e.

Abstract

Graphene-enhanced optoelectronic terahertz (THz) signal processing offers an exquisite potential for tailoring extreme-subwavelength platforms to develop tunable and highly-responsive photonic tools. In this study, we propose a hybrid graphene island-mediated THz metadevice to support tunable charge transfer plasmon (CTP) resonances. We show that bias variations in the gated graphene significantly change the metadevice transmittance at the CTP frequency, while the capacitive dipolar mode remains unchanged. Our numerical and experimental studies show that tuning the conductivity of the graphene islands between a cluster of metallic blocks provides an active and exotic control over the charge transition across the assembly. To experimentally prove the viability of our concept in a practical photonic application, we utilized the presented tunable system as a high modulation-depth THz modulator. This enabled us to facilitate a THz modulation speed of 19 μs and 21 μs for rising and falling durations, respectively, with a modulation depth of 72%.

摘要

石墨烯增强的光电太赫兹(THz)信号处理为定制极亚波长平台以开发可调谐且高响应的光子工具提供了绝佳潜力。在本研究中,我们提出了一种混合石墨烯岛介导的太赫兹超材料器件,以支持可调谐电荷转移等离子体(CTP)共振。我们表明,门控石墨烯中的偏置变化会显著改变超材料器件在CTP频率处的透射率,而电容偶极模式保持不变。我们的数值和实验研究表明,调节金属块簇之间石墨烯岛的电导率可对整个组件的电荷转移提供主动且奇异的控制。为了通过实验证明我们的概念在实际光子应用中的可行性,我们将所提出的可调谐系统用作高调制深度太赫兹调制器。这使我们能够分别实现上升和下降持续时间为19微秒和21微秒的太赫兹调制速度,调制深度为72%。

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