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Terahertz Nonlinear Optics of Graphene: From Saturable Absorption to High-Harmonics Generation

机译:石墨烯的太赫兹非线性光学:从饱和吸收到高谐波产生

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摘要

Graphene has long been predicted to show exceptional nonlinear optical properties, especially in the technologically important terahertz (THz) frequency range. Recent experiments have shown that this atomically thin material indeed exhibits possibly the largest nonlinear coefficients of any material known to date, paving the way for practical graphene-based applications in ultrafast (opto-)electronics operating at THz rates. Here the advances in the booming field of nonlinear THz optics of graphene are reported, and the state-of-the-art understanding of the nature of the nonlinear interaction of graphene with the THz fields based on the thermodynamic model of electron transport in graphene is described. A comparison between different mechanisms of nonlinear interaction of graphene with light fields in THz, infrared, and visible frequency ranges is also provided. Finally, the perspectives for the expected technological applications of graphene based on its extraordinary THz nonlinear properties are summarized. This report covers the evolution of the field of THz nonlinear optics of graphene from the very pioneering to the state-of-the-art works. It also serves as a concise overview of the current understanding of THz nonlinear optics of graphene and as a compact reference for researchers entering the field, as well as for the technology developers.
机译:长期以来,人们一直预测石墨烯会显示出优异的非线性光学性能,特别是在技术上非常重要的太赫兹(THz)频率范围内。最近的实验表明,这种原子薄的材料确实可能表现出迄今为止已知的任何材料中最大的非线性系数,这为在THz速率下工作的超快(光)电子中基于石墨烯的实际应用铺平了道路。本文报道了石墨烯非线性THz光学器件蓬勃发展领域的进展,并且基于石墨烯中电子传输的热力学模型,对石墨烯与THz场的非线性相互作用的性质有了最新的了解。描述。还提供了石墨烯与THz,红外和可见频率范围内的光场的非线性相互作用的不同机制之间的比较。最后,总结了石墨烯基于其非凡的太赫兹非线性特性的预期技术应用前景。本报告涵盖了石墨烯太赫兹非线性光学领域的发展,从非常开创性到最先进的工作。它还简要概述了当前对石墨烯的THz非线性光学的理解,并为进入该领域的研究人员以及技术开发人员提供了紧凑的参考。

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