Qin Xu, Sun Wangyu, Zhou Ziheng, Fu Pengyu, Li Hao, Li Yue
Department of Electronic Engineering, Tsinghua University, Beijing 100084, China.
Beijing National Research Center for Information Science and Technology, Tsinghua University, Beijing 100084, China.
Nanophotonics. 2021 Dec 8;11(9):1659-1676. doi: 10.1515/nanoph-2021-0613. eCollection 2022 Apr.
Plasmonic phenomena on the surface between metal and dielectric have received extensive attention, and have boosted a series of exciting techniques. Plasmonics describes the interaction between light and electronics and shows great potential in nanophotonics, optoelectronic devices, quantum physics, and surface-enhanced spectroscopy, etc. However, plasmonic phenomena are always suffering from the inherent loss issue of plasmonic materials at optical frequency, which has restricted further applications of plasmonics. In this review, we focus on the technique of waveguide effective plasmonics, which is a feasible low-loss realization of plasmonic metamaterials in lower frequency based on the structural dispersion. This review provides the underlying physics of the waveguide effective plasmonics and its applications varying from classical plasmonic concepts to novel effective plasmonic devices. Finally, we make a brief discussion on the direction of future researches and a prospect of the potential applications.
金属与电介质表面的等离子体现象受到了广泛关注,并推动了一系列令人兴奋的技术发展。等离子体光学描述了光与电子之间的相互作用,在纳米光子学、光电器件、量子物理和表面增强光谱学等领域展现出巨大潜力。然而,等离子体现象始终受限于等离子体材料在光频下固有的损耗问题,这限制了等离子体光学的进一步应用。在本综述中,我们聚焦于波导有效等离子体光学技术,这是一种基于结构色散在较低频率下实现等离子体超材料低损耗的可行方法。本综述阐述了波导有效等离子体光学的基础物理原理及其从经典等离子体概念到新型有效等离子体器件的各种应用。最后,我们对未来研究方向进行了简要讨论,并对潜在应用前景进行了展望。