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Quantum Effects in the Nonlinear Response of Graphene Plasmons

机译:石墨烯等离子体激元非线性响应中的量子效应

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摘要

The ability of graphene to support long-lived, electrically tunable plasmons that interact strongly with light, combined with its highly nonlinear optical response, has generated great expectations for application of the atomically thin material to nanophotonic devices. These expectations are mainly reinforced by classical analyses performed using the response derived from extended graphene, neglecting finite-size and nonlocal effects that become important when the carbon layer is structured on the milometer scale in actual device designs. Here we show that finite-size effects produce large contributions that increase the nonlinear response of nanostructured graphene to significantly higher levels than those predicted by classical theories. We base our analysis on a quantum-mechanical description of graphene using tight-binding electronic states combined with the random-phase approximation. While classical and quantum descriptions agree well for the linear response when either the plasmon energy is below the Fermi energy or the size of the structure exceeds a few tens of nanometers, this is not always the case for the nonlinear response, and in particular, third-order Kerr-type nonlinearities are generally underestimated by the classical theory. Our results reveal the complex quantum nature of the optical response in nanostructured graphene, while further supporting the exceptional potential of this material for nonlinear nanophotonic devices.
机译:石墨烯支持与光发生强烈相互作用的长寿命电可调等离子体激元的能力,加上其高度非线性的光学响应,已为将原子薄材料应用于纳米光子器件产生了很高的期望。这些期望主要通过使用扩展石墨烯得出的响应进行的经典分析得到了加强,而忽略了有限尺寸和非局部效应,当实际设备设计中的碳层以千分尺尺度构成时,这一点就变得很重要。在这里,我们显示出有限尺寸的影响产生了巨大的贡献,这大大增加了纳米结构石墨烯的非线性响应,使其比经典理论所预测的响应明显更高。我们基于紧密结合的电子态与随机相位近似相结合的石墨烯的量子力学描述进行分析。当等离子激元能量低于费米能或结构尺寸超过几十纳米时,经典描述和量子描述对于线性响应非常吻合,但非线性响应并不总是如此,尤其是第三种。经典理论通常会低估Kerr型非线性。我们的结果揭示了纳米结构石墨烯中光学响应的​​复杂量子性质,同时进一步支持了这种材料在非线性纳米光子器件中的巨大潜力。

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