论文标题
等离质元面的超高Q共振
Ultra-high-Q resonances in plasmonic metasurfaces
论文作者
论文摘要
等离子体纳米结构有望实现超薄的次波长设备,降低功率工作阈值并启用元信息中的非线性光学功能。但是,通过电阻损失引入的吸收,这一诺言会大大削弱,从而导致元表面群落从等离子体上摆脱了替代材料平台(例如介电),从而提供了较弱的田间增强,但可容忍的损失较大。在这里,我们通过利用表面晶格共振(SLR)在电信c频段中报告的等离激元跨表面,其质量因子(Q因子)为2340,超过了记录的数量级。此外,我们表明SLR保留了许多与局部等离子共振相同的好处,例如沿金属表面的光线增强和强烈限制。我们的结果表明,SLR为量身定制事件灯场提供了一种令人兴奋且未开发的方法,并且可以为任何光学共鸣应用铺平道路。
Plasmonic nanostructures hold promise for the realization of ultra-thin sub-wavelength devices, reducing power operating thresholds and enabling nonlinear optical functionality in metasurfaces. However, this promise is substantially undercut by absorption introduced by resistive losses, causing the metasurface community to turn away from plasmonics in favour of alternative material platforms (e.g., dielectrics) that provide weaker field enhancement, but more tolerable losses. Here, we report a plasmonic metasurface with a quality-factor (Q-factor) of 2340 in the telecommunication C band by exploiting surface lattice resonances (SLRs), exceeding the record by an order of magnitude. Additionally, we show that SLRs retain many of the same benefits as localized plasmonic resonances, such as field enhancement and strong confinement of light along the metal surface. Our results demonstrate that SLRs provide an exciting and unexplored method to tailor incident light fields, and could pave the way to flexible wavelength-scale devices for any optical resonating application.