论文标题

分层等效石墨烯元面中的双曲线欺骗等离子体

Hyperbolic spoof plasmons in layered equivalent graphene metasurfaces

论文作者

Yin, Li-Zheng, Huang, Tie-Jun, Wang, Di, Liu, Pu-Kun

论文摘要

石墨烯等化的进步为实现各种纳米电子学和其他令人兴奋的光学设备的设计和制造提供了许多机会。但是,由于材料属性的限制,其工作频率无法下降到微波范围。在这项工作中,提出并证明了基于超薄单层等离子元素表的新概念。基于这个概念,理论上可以通过定期堆叠等效的石墨烯元素来获得椭圆形和双曲线分散体。作为概念和方法的证明,设计和数值证明了椭圆形和全金属双曲线超材料。作为该方法的指定实现,制造了实用的双曲线超材料,并通过定向传播和光子自旋霍尔效应验证其有效性进行了实验研究。此外,为了研究该方法在极端参数条件下的有效性,设计和制造了概念验证超重,其近场分辨率为0.05 $λ$实验验证。基于提出的概念,在微波炉方面也可以实现多种光石墨烯的超材料,例如聚焦镜头,依赖性方向耦合器和Epsilon-Near-Zero材料。

Advances in graphene plasmonics offer numerous opportunities for enabling the design and manufacture of a variety of nanoelectronics and other exciting optical devices. However, due to the limitation of material properties, its operating frequency cannot drop to the microwave range. In this work, a new concept of microwave equivalent graphene based on the ultrathin monolayer plasmonic metasurface is proposed and demonstrated. Based on this concept, elliptical and hyperbolic dispersion can be theoretically obtained by stacking the equivalent graphene metasurfaces periodically. As proofs of the concept and method, an elliptical and an all-metal hyperbolic metamaterial are designed and numerically demonstrated. As a specified realization of the method, a practical hyperbolic metamaterial is fabricated and experimentally investigated with its validity verified by the directional propagation and photonic spin Hall effect. Furthermore, to investigate the validity of the method under extreme parameter conditions, a proof-of-concept hyperlens is designed and fabricated, with its near-field resolution of 0.05$λ$ experimentally verified. Based on the proposed concept, diverse optical graphene metamaterials such as focusing lens, dispersion-dependent directional couplers, and epsilon-near-zero materials can also be realized in the microwave regime.

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