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金属狭缝超晶格中法诺共振的完全控制

Full controlling of Fano resonances in metal-slit superlattice.

作者信息

Deng Zi-Lan, Yogesh Natesan, Chen Xiao-Dong, Chen Wen-Jie, Dong Jian-Wen, Ouyang Zhengbiao, Wang Guo Ping

机构信息

College of Electronic Science and Technology and Key Laboratory of Optoelectronic Devices and Systems of Ministry of Education and Guangdong Province, Shenzhen University, Shenzhen 518060, China.

State Key Laboratory of Optoelectronic Materials and Technologies and School of Physics and Engineering, Sun Yat-Sen University, Guangzhou 510275, China.

出版信息

Sci Rep. 2015 Dec 18;5:18461. doi: 10.1038/srep18461.

Abstract

Controlling of the lineshape of Fano resonance attracts much attention recently due to its wide capabilities for lasing, biosensing, slow-light applications and so on. However, the controllable Fano resonance always requires stringent alignment of complex symmetry-breaking structures and thus the manipulation could only be performed with limited degrees of freedom and narrow tuning range. Furthermore, there is no report so far on independent controlling of both the bright and dark modes in a single structure. Here, we semi-analytically show that the spectral position and linewidth of both the bright and dark modes can be tuned independently and/or simultaneously in a simple and symmetric metal-slit superlattice, and thus allowing for a free and continuous controlling of the lineshape of both the single and multiple Fano resonances. The independent controlling scheme is applicable for an extremely large electromagnetic spectrum range from optical to microwave frequencies, which is demonstrated by the numerical simulations with real metal and a microwave experiment. Our findings may provide convenient and flexible strategies for future tunable electromagnetic devices.

摘要

由于法诺共振在激光、生物传感、慢光应用等方面具有广泛的能力,其线形控制最近备受关注。然而,可控的法诺共振总是需要复杂的破缺对称结构进行严格的对准,因此这种操纵只能在有限的自由度和狭窄的调谐范围内进行。此外,到目前为止,还没有关于在单个结构中独立控制亮模式和暗模式的报道。在这里,我们通过半解析方法表明,在一个简单对称的金属狭缝超晶格中,可以独立和/或同时调节亮模式和暗模式的光谱位置和线宽,从而可以自由连续地控制单个和多个法诺共振的线形。这种独立控制方案适用于从光频到微波频率的极宽电磁频谱范围,这通过使用真实金属的数值模拟和微波实验得到了证明。我们的发现可能为未来的可调谐电磁器件提供方便灵活的策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/db68/4683451/1fa831f9cb79/srep18461-f1.jpg

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