论文标题

介电微球颗粒中的光学超声

Optical super-resonances in dielectric microsphere particles

论文作者

Wang, Zengbo, Lukyanchuk, Boris, Wu, Baidong, Yan, Bing, Assel, Ahmetova, Yaminsky, Igor, Yu, Haibo, Liu, Lianqing

论文摘要

通常,通过使用等离激元纳米结构和超材料(例如强耦合的银纳米颗粒)来实现极端场的定位和巨大的场增强。Dielectric颗粒和结构可以将光聚焦到衍射极限(光子纳米jet效应)之外,但强度较弱。最近,我们表明介电微球可以支持高阶MIE共振模式(“超级共振模式”),该模式可以产生与10^4-10^7阶的等离激元结构相似的电场强度增强。在这项工作中,我们旨在进一步提高我们对超级共振模式的理解。提出了有关尺寸参数和折射率对广泛参数范围内光学超声共鸣以及具有改进数值精确度的光学超相连的影响的新结果。结果表明,在超过等离激元增强的特定条件下,电场强度增强可以达到创纪录的10^9-10^11。此外,研究并首次比较了不同照明源(例如不同的颜色LED或激光,卤素灯)下的微球镜头(例如不同颜色LED或激光,卤素灯)的超级共和性聚焦。这些结果对于理解微分辨率纳米镜检查的超分辨率机制很重要,并且会在光子学中发现许多潜在的应用。

Extreme field localization and giant field enhancement are often achieved by using plasmonic nanostructures and metamaterials such as strongly coupled silver nanoparticles.Dielectric particles and structures can focus light beyond the diffraction limit (photonic nanojet effect), but with much weaker strengths. Recently, we showed that dielectric microspheres could support high-order Mie resonance modes ("super resonance mode") that can generate similar level of electric field intensity enhancement as plasmonic structures on the order of 10^4 - 10^7. In this work, we aim to further advance our understanding of the super-resonance modes. New results on the effects of size parameter and refractive index on optical super-resonances across a wide parameter range and with improved numerical accuracies is presented. The results suggest that the electric field intensity enhancement could reach a record high level of 10^9-10^11 at specific conditions that surpass plasmonic enhancements. Moreover, super-resonance-enabled focusing by microsphere lens under different lighting sources (e.g., different color LEDs or lasers, halogen lamps) is investigated and compared for the first time. These results are important in understanding the super-resolution mechanism for microsphere nanoscopy and will find numerous potential applications in photonics.

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