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Terahertz and Infrared Spectroscopy of Gated Large-Area Graphene

机译:门控大面积石墨烯的太赫兹和红外光谱

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摘要

We have fabricated a centimeter-size single-layer graphene device with a gate electrode, which can modulate the transmission of terahertz and infrared waves. Using time-domain terahertz spectroscopy and Fourier-transform infrared spectroscopy in a wide frequency range (10–10 000 cm–1), we measured the dynamic conductivity change induced by electrical gating and thermal annealing. Both methods were able to effectively tune the Fermi energy, EF, which in turn modified the Drude-like intraband absorption in the terahertz as well as the “2EF onset” for interband absorption in the mid-infrared. These results not only provide fundamental insight into the electromagnetic response of Dirac fermions in graphene but also demonstrate the key functionalities of large-area graphene devices that are desired for components in terahertz and infrared optoelectronics.
机译:我们已经制造了具有栅电极的厘米大小的单层石墨烯器件,该器件可以调节太赫兹和红外波的传输。使用时域太赫兹光谱和傅立叶变换红外光谱在很宽的频率范围(10–10 000 cm-1)中,我们测量了电选通和热退火引起的动态电导率变化。两种方法都能够有效地调节费米能量EF,从而改变了太赫兹中Drude的带内吸收以及中红外的带间吸收的``2EF发作''。这些结果不仅提供了对石墨烯中狄拉克(Dirac)费米子的电磁响应的基本了解,而且还证明了太赫兹和红外光电器件中所需的大面积石墨烯器件的关键功能。

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