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Silicon microcavity arrays with open access and a finesse of half a million

机译:硅微腔阵列具有开放式访问权限且精度高达半百万

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摘要

Optical resonators are essential for fundamental science, applications in sensing and metrology, particle cooling, and quantum information processing. Cavities can significantly enhance interactions between light and matter. For many applications they perform this task best if the mode confinement is tight and the photon lifetime is long. Free access to the mode center is important in the design to admit atoms, molecules, nanoparticles, or solids into the light field. Here, we demonstrate how to machine microcavity arrays of extremely high quality in pristine silicon. Etched to an almost perfect parabolic shape with a surface roughness on the level of 2 Å and coated to a finesse exceeding F = 500,000, these new devices can have lengths below 17 µm, confining the photons to 5 µm waists in a mode volume of 88λ3. Extending the cavity length to 150 µm, on the order of the radius of curvature, in a symmetric mirror configuration yields a waist smaller than 7 µm, with photon lifetimes exceeding 64 ns. Parallelized cleanroom fabrication delivers an entire microcavity array in a single process. Photolithographic precision furthermore yields alignment structures that result in mechanically robust, pre-aligned, symmetric microcavity arrays, representing a light-matter interface with unprecedented performance.
机译:光学谐振器对于基础科学,传感和计量学,粒子冷却和量子信息处理应用至关重要。空腔可以显着增强光与物质之间的相互作用。对于许多应用,如果模式限制严格且光子寿命长,它们将最好地执行此任务。在设计中自由进入模式中心对于让原子,分子,纳米粒子或固体进入光场很重要。在这里,我们演示了如何在原始硅中加工极高质量的微腔阵列。这些新器件蚀刻成几乎完美的抛物线形,表面粗糙度为2Å,涂层精细度超过F = 500,000,长度可以低于17 µm,将光子限制在5 µm的腰部,模量为88λ 3 。在对称镜配置中,将腔体长度按曲率半径的顺序扩展到150μm,腰部小于7μm,光子寿命超过64μns。并行无尘室制造可在单个过程中提供整个微腔阵列。光刻精度还可以产生对准结构,从而形成机械强度高,预对准,对称的微腔阵列,代表具有前所未有性能的光-物质界面。

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