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Experimental Characterization of the Ultrafast Tunable and Broadband Optical Kerr Nonlinearity in Graphene

机译:石墨烯中超快可调谐和宽带光学Kerr非线性的实验表征

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摘要

Graphene’s giant nonlinear optical response along with its integrability has made it a vaunted material for on-chip photonics. Despite a multitude of studies confirming its strong nonlinearity, there is a lack of reports examining the fundamental processes that govern the response. Addressing this gap in knowledge we analyse the role of experimental parameters by systematically measuring the near-infrared spectral dependence, the sub-picosecond temporal evolution and pulse-width dependence of the effective Kerr coefficient (n2,eff) of graphene in hundreds of femtosecond regime. The spectral dependence measured using the Z-scan technique is corroborated by a density matrix quantum theory formulation to extract a n2,eff ∝ λ2 dependence. The temporal evolution obtained using the time-resolved Z-scan measurement shows the nonlinearity peaking at zero delay time and relaxing on a time-scale of carrier relaxation. The dependence of the n2,eff on pulse duration is obtained by expanding the input pulse using a prism-pair set-up. Our results provide an avenue for controllable tunability of the nonlinear response in graphene, which is limited in silicon photonics.
机译:石墨烯的巨大非线性光学响应及其可集成性使其成为片上光子学的忠实材料。尽管有大量研究证实了其强烈的非线性,但仍缺乏报告来检查控制响应的基本过程。为了解决这一知识差距,我们通过系统地测量数百飞秒状态下石墨烯的有效克尔系数(n2,eff)的近红外光谱依赖性,亚皮秒时间演变和脉宽依赖性,来分析实验参数的作用。使用Z扫描技术测量的光谱相关性得到密度矩阵量子理论公式的证实,以提取n2,eff ∝λ 2 相关性。使用时间分辨Z扫描测量获得的时间演变表明,非线性在零延迟时间达到峰值,并在载流子弛豫的时间尺度上弛豫。通过使用棱镜对设置扩展输入脉冲来获得n2,eff对脉冲持续时间的依赖性。我们的结果为石墨烯中非线性响应的可控可调性提供了一条途径,这在硅光子学中是有限的。

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