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Terahertz Generation by Dynamical Photon Drag Effect in Graphene Excited by Femtosecond Optical Pulses

机译:飞秒光脉冲激发石墨烯中动态光子拖曳效应产生太赫兹

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Graphene has been proposed as a particularly attractive material for the achievement of strong optical nonlinearities, in particular generation of terahertz radiation. However, owing to the particular symmetries of the C-lattice, second-order nonlinear effects such as difference-frequency or rectification processes are predicted to vanish in a graphene layer for optical excitations (?ω ? 2E_F) involving the two relativistic dispersion bands. Here we experimentally demonstrate that graphene excited by femtosecond optical pulses generate a coherent THz radiation ranging from 0.1 to 4 THz via a second-order nonlinear effect. We fully interpret its characteristics with a model describing the electron and hole states beyond the usual massless relativistic scheme. This second-order nonlinear effect is dynamical photon drag, which relies on the transfer of light momentum to the carriers by the ponderomotive electric and magnetic forces. The model highlights the key roles of next-C-neighbor couplings and of unequal electron and hole lifetimes in the observed second-order response. Finally, our results indicate that dynamical photon drag effect in graphene can provide emission up to 60 THz, opening new routes for the generation of ultrabroadband terahertz pulses.
机译:已经提出了石墨烯作为实现强光学非线性特别是太赫兹辐射的产生的特别有吸引力的材料。然而,由于C晶格的特殊对称性,预计在涉及两个相对论色散带的光学激发(ωω≤2E_F)的石墨烯层中,诸如差频或整流过程之类的二阶非线性效应将消失。在这里,我们通过实验证明,飞秒光脉冲激发的石墨烯会通过二阶非线性效应产生从0.1到4 THz的相干THz辐射。我们用一个描述电子和空穴状态的模型全面解释了它的特性,这超出了通常的无质量相对论方案。这种二阶非线性效应是动态光子阻力,它依赖于动磁的电磁力将光动量转移到载流子上。该模型强调了在观察到的二阶响应中,下一个C邻域耦合以及不相等的电子和空穴寿命的关键作用。最后,我们的结果表明,石墨烯中的动态光子拖曳效应可以提供高达60 THz的发射,为超宽带太赫兹脉冲的产生开辟了新途径。

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