论文标题
极大的非等级非线性指数和Epsilon-Near-Zero材料的相移
Extremely Large Nondegenerate Nonlinear Index and Phase Shift in Epsilon-Near-Zero Materials
论文作者
论文摘要
Epsilon-near-Zero(ENZ)材料已成为强大非线性光学(NLO)相互作用的可行平台。表现出ENZ条件的材料中的NLO相移非常大,但是,迄今为止缺乏这种现象的大小和时间动力学的直接实验测量,迄今为止缺乏这种现象的幅度和时间动力学。在这里,我们直接使用三种不同的技术直接测量吲哚丁基氧化物(ITO)薄膜的NLO相移。通过表征探针束的激发诱导的,时间分辨的光束挠度(BD),我们测量了非排定NLO效应,从而可以单独确定激发和探针波长对NLO相位移位的影响,因为它们在整个ENZ区域变化。这些实验表明,将探针脉冲以ENZ为中心极大地有助于这种增强。但是,NLO相移对激发波长不太敏感,这仅略微增强了倾斜入射的TM极光光的非线性。我们还发现,激发引起的探针脉冲的光谱移位遵循通过BD实验测得的NLO相移的大小和时间动力学。我们观察到大型超快跨相调制,与导带中载体的重新分布一致。最后,我们使用z扫描方法,在正常发病率接近正常的enz处测量退化的非线性折射。所有三个测量结果都同意,揭示了ITO中巨大的次秒NLO相移。从最大的角度来看,我们始终如一地测量有效的诱导指数变化,该指数变化大于线性指数。
Epsilon-near-zero (ENZ) materials have emerged as viable platforms for strong nonlinear optical (NLO) interactions. The NLO phase shift in materials exhibiting an ENZ condition is extremely large, however, direct experimental measurements of the magnitude and time dynamics of this phenomenon, particularly nondegenerate NLO phase shifts, have so far been lacking. Here, we directly measure the NLO phase shift of an Indium-Tin-Oxide (ITO) thin film using three different techniques. By characterizing the excitation-induced, time resolved Beam Deflection (BD) of a probe beam, we measure the nondegenerate NLO effects, allowing a separate determination of the effects of excitation and probe wavelengths on the NLO phase shift as they are varied across the ENZ region. These experiments reveal that having the probe pulse centered at ENZ greatly contributes to this enhancement; however, the NLO phase shift is less sensitive to the excitation wavelength, which only slightly enhances the nonlinearity for obliquely incident TM-polarized light. We also find that the spectral shift of the probe pulse induced by the excitation follows both the magnitude and time dynamics of the NLO phase shift measured via the BD experiments. We observe large, ultrafast cross-phase modulation in agreement with a redistribution of carriers in the conduction band. Finally using the Z-Scan method, we measure the degenerate nonlinear refraction at ENZ near normal incidence. The results of all three measurements agree, revealing a gigantic sub-picosecond NLO phase shift in ITO. At its largest, we consistently measure an effective induced index change that is greater than the linear index.