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Dynamics of light amplification and gain in nano-plasmonic fishnet metamaterials

机译:纳米等离子体鱼网超材料的光放大和增益动力学

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Plasmonic metamaterials form an exciting new class of engineered media that promise a range of important applications, such as subwavelength focusing, cloaking and slowing/stopping of light. At optical frequencies, using gain to overcome potentially not insignificant losses has recently emerged as a viable solution to ultralow-loss operation that may lead to next-generation active metamaterials. Here, we employ a Maxwell-Bloch methodology for the analysis of these gain-enhanced optical nanomaterials. The method allows us to study the dynamics of the coherent plasmon-gain interaction, nonlinear saturation, field enhancement as well as radiative and non-radiative damping such as tunnelling and Forster coupling. Using numerical pump-probe experiments on a double-fishnet metamaterial with dye-molecule inclusions we investigate the build-up of the inversion and the formation of the plasmonic modes in the low-Q fishnet cavity. We find that loss compensation occurs in the negative-refractive-index regime and that, due to the loss compensation and the associated sharpening of the resonance, the real part of the refractive index of the metamaterial becomes more negative compared to the passive case. Furthermore, we investigate the behaviour of the metamaterial above the lasing threshold, and we identify the occurrence of a far-field lasing burst and gain depletion when higher dye densities are used. Our results provide deep insight into the internal processes that affect the macroscopic properties of active metamaterials. This could guide the development of amplifying and lasing plasmonic nanostructures.
机译:等离子体等离子材料形成了令人兴奋的新型工程介质,它们有望实现一系列重要的应用,例如亚波长聚焦,隐蔽和减慢/停止光。在光频率下,最近出现了使用增益来克服可能不重要的损耗的解决方案,这是一种可行的解决方案,可用于超低损耗操作,这可能会导致产生下一代活性超材料。在这里,我们采用Maxwell-Bloch方法来分析这些增益增强型光学纳米材料。该方法使我们能够研究相干等离子体激元-增益相互作用,非线性饱和,场增强以及辐射和非辐射阻尼(例如隧穿和Forster耦合)的动力学。使用带有染料-分子夹杂物的双鱼网超材料的数值泵浦探针实验,我们研究了低Q鱼网腔中反演的建立和等离子体激元模的形成。我们发现损耗补偿发生在负折射率范围内,并且由于损耗补偿和相关的共振尖锐化,与无源情况相比,超材料的折射率的实部变得更加负。此外,我们研究了超激光激发阈值之上的超材料的行为,并确定了当使用更高的染料密度时,远场激光激发的发生和增益损耗。我们的结果对影响活性超材料的宏观性能的内部过程提供了深入的了解。这可以指导放大和激射等离子体纳米结构的发展。

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