论文标题

具有非线性活性等离子体上丘面的电磁波的非转向传播

Nonreciprocal transmission of electromagnetic waves with nonlinear active plasmonic metasurfaces

论文作者

Guo, Tianjing, Argyropoulos, Christos

论文摘要

非肾脏对光学信息处理,全双工通信以及对敏感激光设备免受不需要反射的保护很重要。但是,在光学频率中获得强大的非注射反应非常具有挑战性,尤其是在考虑纳米级构型时。在这项工作中,我们通过证明紧凑的双面等离子元表面来解决此问题,该层面是在近红外频率下用作新的超薄非偏流传输滤波器。所提出的纳米结构实际上很容易实现,因为它由两个银纳米条组成,其中有不同的尺寸放在超薄活性介电间距的两侧。引入的增益会导致线性操作方向上的特殊点形成,在这种情况下,由于呈现的非宿舍时间对称的纳米级系统,由于损失补偿而引起的单向完美传播。当考虑其非线性响应时,所证明的等离子跨表面在纳米级时打破了洛伦兹的互惠定律,这主要是由于其空间不对称的几何形状与增强的非线性相结合。在相对较低的输入激光强度值下,实现了从相反方向的强度和宽带非偏发对比度。此外,相同的非注册跨表面设计也说明了具有明显对比度的不对称非线性第三次谐波产生。这项工作的发现可能导致实现各种新的自我诱导的非型纳米光子构型,例如集成的超快开关,超薄保护涂层和不对称的定向成像设备。

Nonreciprocity is important for optical information processing, full-duplex communications, and protection of sensitive laser equipment from unwanted reflections. However, it is very challenging to obtain strong nonreciprocal response in optical frequencies, especially when nanoscale configurations are considered. In this work, we solve this problem by demonstrating a compact bifacial plasmonic metasurface that acts as a new ultrathin nonreciprocal transmission filter at near-infrared frequencies. The proposed nanostructure is simple to be practically implemented, since it is composed of two silver nanostripes with different dimensions placed on both sides of an ultrathin active dielectric spacing layer. The introduced gain leads to an exceptional point formation in the linear operation regime, where unidirectional perfect transmission due to loss compensation is achieved from the presented non-Hermitian parity-time symmetric nanoscale system. The demonstrated plasmonic metasurface breaks the Lorentz reciprocity law at the nanoscale when its nonlinear response is considered, mainly due to its spatially asymmetric geometry combined with enhanced nonlinearity. Strong and broadband nonreciprocity with unity transmission contrast from opposite directions is realized under relatively low input laser intensity values. Furthermore, asymmetric nonlinear third harmonic generation with a pronounced contrast is also illustrated by the same nonreciprocal metasurface design. The findings of this work can lead to the realization of various new self-induced nonreciprocal nanophotonic configurations, such as integrated ultrafast switches, ultrathin protective coatings, and asymmetric directional imaging devices.

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