论文标题

工程多种GHz机械模式

Engineering multiple GHz mechanical modes in optomechanical crystal cavities

论文作者

Mercadé, Laura, Ortiz, Raúl, Grau, Alberto, Griol, Amadeu, Navarro-Urrios, Daniel, Martínez, Alejandro

论文摘要

光力学晶体腔(OMCC)是广泛现象和应用的基本纳米结构。通常,此类OMCC中的光力相互作用仅限于单个光学模式和独特的机械模式。从这个意义上讲,消除单个模式约束(例如,通过添加更多的机械模式)应启用更复杂的物理现象,从而产生多模光力相互作用的背景。但是,OMCC中以较高耦合率的多种机械模式以受控方式生产的一般方法仍然缺失。在这项工作中,我们提出了一条途径,将多种GHz机械模式局限于与OMCC Engineering相似的光场相同的光场(最高600 kHz)的途径。本质上,我们在空腔中心与镜像区域之间的绝热过渡中增加了晶胞数量(由圆形孔在其两侧的圆形孔中穿孔)。值得注意的是,我们的空腔中的机械模式位于完整的语音带隙内,这是在低温温度下实现超高机械Q因子的关键要求。完整的语音带隙中的多模束和使用标准硅纳米技术实现的易感性使我们的OMCC对在古典和量子领域中的应用高度吸引力。

Optomechanical crystal cavities (OMCCs) are fundamental nanostructures for a wide range of phenomena and applications. Usually, optomechanical interaction in such OMCCs is limited to a single optical mode and a unique mechanical mode. In this sense, eliminating the single mode constraint - for instance, by adding more mechanical modes - should enable more complex physical phenomena, giving rise to a context of multimode optomechanical interaction. However, a general method to produce in a controlled way multiple mechanical modes with large coupling rates in OMCCs is still missing. In this work, we present a route to confine multiple GHz mechanical modes coupled to the same optical field with similar optomechanical coupling rates - up to 600 kHz - by OMCC engineering. In essence, we increase the number of unit cells (consisting of a silicon nanobrick perforated by a circular holes with corrugations at its both sides) in the adiabatic transition between the cavity center and the mirror region. Remarkably, the mechanical modes in our cavities are located within a full phononic bandgap, which is a key requirement to achieve ultra high mechanical Q factors at cryogenic temperatures. The multimode bevavior in a full phononic bandgap and the easiness of realization using standard silicon nanotechnology make our OMCCs highly appealing for applications in the classical and quantum realms.

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