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Control of terahertz nonlinear transmission with electrically gated graphene metadevices

机译:电控石墨烯元器件对太赫兹非线性传输的控制

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摘要

Graphene, which is a two-dimensional crystal of carbon atoms arranged in a hexagonal lattice, has attracted a great amount of attention due to its outstanding mechanical, thermal and electronic properties. Moreover, graphene shows an exceptionally strong tunable light-matter interaction that depends on the Fermi level - a function of chemical doping and external gate voltage - and the electromagnetic resonance provided by intentionally engineered structures. In the optical regime, the nonlinearities of graphene originated from the Pauli blocking have already been exploited for mode-locking device applications in ultrafast laser technology, whereas nonlinearities in the terahertz regime, which arise from a reduction in conductivity due to carrier heating, have only recently been confirmed experimentally. Here, we investigated two key factors for controlling nonlinear interactions of graphene with an intense terahertz field. The induced transparencies of graphene can be controlled effectively by engineering meta-atoms and/or changing the number of charge carriers through electrical gating. Additionally, nonlinear phase changes of the transmitted terahertz field can be observed by introducing the resonances of the meta-atoms.
机译:石墨烯是排列成六方晶格的碳原子二维晶体,​​由于其出色的机械,热和电子性能而备受关注。此外,石墨烯显示出异常强大的可调谐光-物质相互作用,这取决于费米能级-化学掺杂和外部栅极电压的函数-以及故意设计的结构提供的电磁共振。在光学机制中,源自Pauli阻断的石墨烯非线性已被用于超快激光技术中的锁模设备应用,而太赫兹机制中的非线性(仅由于载流子加热导致电导率降低而引起)最近已通过实验证实。在这里,我们研究了控制石墨烯与太赫兹场的非线性相互作用的两个关键因素。石墨烯的感应透明性可以通过工程形变原子和/或通过电门控改变载流子的数量来有效控制。另外,可以通过引入亚原子的共振来观察透射的太赫兹场的非线性相位变化。

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