Broadband Enhancement of Faraday Effect Using Magnetoplasmonic Metasurfaces

被引:0
作者
Soheila Kharratian
Hakan Urey
Mehmet C. Onbaşlı
机构
[1] Koç University,Department of Materials Science and Engineering
[2] Koç University,Department of Electrical and Electronics Engineering
来源
Plasmonics | 2021年 / 16卷
关键词
Magnetooptics; Plasmonics; Faraday effect; Metasurfaces; Faraday effect;
D O I
暂无
中图分类号
学科分类号
摘要
Magnetooptical Faraday effect enables ultrafast photonic devices based on nonreciprocal polarization rotation; however, the intrinsic weakness of Faraday effect prevents miniaturization and practical applications of nonreciprocal photonic devices. Magnetoplasmonics offers new mechanisms for enhancing magnetooptical effects using surface plasmon resonances, which generally have narrow bandwidths. Using finite-difference time-domain modeling, we demonstrate a magnetoplasmonic metasurface, which remarkably enhances the Faraday effect in a wide spectral range. While Faraday rotation in a bare bismuth-substituted yttrium iron garnet film is below 0.02° in the studied range of 600–1600 nm, the proposed metasurface yields few degrees of rotation in a broad band with a maximum exceeding 6.5°, which indicates about three orders of magnitude enhancement. We also show that by optimizing the configuration of the system including the geometry and excitation parameters, the metasurface response and operation band can be tuned further, and rotation values higher than 20° can be achieved. Finally, we present guidelines for designing magnetoplasmonic metasurfaces.
引用
收藏
页码:521 / 531
页数:10
相关论文
共 189 条
[31]  
Much G(2016)The rise of plasmonic metasurfaces Sci Rep 6 20663-411
[32]  
Shirakashi Z(2017)Design optimisation of plasmonic metasurfaces for mid-infrared high-sensitivity chemical sensing Nat Photonics 11 462-3740
[33]  
Goto T(2017)Plasmonic nanoantennas: fundamentals and their use in controlling the radiative properties of nanoemitters Plasmonics 12 293-1097
[34]  
Takagi H(2011)Nonreciprocal plasmonics enables giant enhancement of thin-film Faraday rotation Chem Rev 111 3888-17
[35]  
Nakamura Y(2013)Faraday effect in hybrid magneto-plasmonic photonic crystals Nat Commun 4 1599-107
[36]  
Lim PB(2015)Enhancement of magneto-optical Faraday effects and extraordinary optical transmission in a tri-layer structure with rectangular annular arrays Opt Express 23 22238-333
[37]  
Goto T(2016)Enhanced Faraday rotation in one dimensional magneto-plasmonic structure due to Fano resonance Opt Lett 41 729-200
[38]  
Lenz JE(2018)A wideband cross polarization conversion using metasurface J Magn Magn Mater 451 305-4379
[39]  
Arakelyan S(2017)Controlling optical polarization conversion with Ge2Sb2Te5-based phase-change dielectric metamaterials Radio Sci 52 1395-109
[40]  
Galstyan O(2018)Linear and circular-polarization conversion in X-band using anisotropic metasurface Nanoscale 10 12054-251