论文标题
跨表面稳定的光学微腔
Metasurface-Stabilized Optical Microcavities
论文作者
论文摘要
我们通过使用无定形硅元图作为两个腔端镜之一来抵消腔模式的相位演变来证明稳定的光学微腔。仔细的设计使我们能够将电信波长的元表面散射损失限制在不到2%的情况下,并将分布式的bragg反射器用作元图基板可确保高反射率。我们的第一个演示在实验上实现了电信波长的微腔,其质量因子高达4600,光谱共振线宽低于0.4 nm,并且模式量低于2.7 $λ^3 $。然后,我们证明该方法引入了以任意横向强度曲线和设计空腔增强全息图模式稳定模式的前所未有的自由。我们的方法将电介质跨面的纳米光控制能力引入了腔电动力学,并使用广泛的半导体制造过程直接在工业上可扩展。
We demonstrate stable optical microcavities by counteracting the phase evolution of the cavity modes using an amorphous silicon metasurface as one of the two cavity end mirrors. Careful design allows us to limit the metasurface scattering losses at telecom wavelengths to less than 2% and using a distributed Bragg reflector as metasurface substrate ensures high reflectivity. Our first demonstration experimentally achieves telecom-wavelength microcavities with quality factors of up to 4600, spectral resonance linewidths below 0.4 nm, and mode volumes down to below 2.7$λ^3$. We then show that the method introduces unprecedented freedom to stabilize modes with arbitrary transverse intensity profiles and design cavity-enhanced hologram modes. Our approach introduces the nanoscopic light control capabilities of dielectric metasurfaces to cavity electrodynamics and is directly industrially scalable using widespread semiconductor manufacturing processes.