论文标题

在悬浮的砷化炮光集成电路平台中,使用羔羊波超模型使用羊肉波超模型转导压电机电信号转导

Piezo-optomechanical signal transduction using Lamb wave supermodes in a suspended Gallium Arsenide photonic integrated circuits platform

论文作者

Khurana, Ankur, Jiang, Pisu, Balram, Krishna C.

论文摘要

压电光学平台是从微波炉到光频域有效转导的最有希望的路线之一。需要开发新的设备体系结构,以达到建筑有效量子传感器的严格要求。在这项工作中,我们利用机械超模式原理通过制造与肋波导的机械呼吸模式在悬挂的砷化壳(GAAS)光子集成电路(PIC)平台中杂交的羔羊波谐振器(PIC)平台,从而提高了整体微波炉至光学转导效率。将GAAS中可用的强弹性相互作用与该体系结构提高的声子注入效率相结合,我们证明了信号转导高达7 GHz,并且使用此方法,使用此方法,使用此方法,将转移效率提高了$ \ $ \ $ \ $ 25 $ \ times $ $。我们还概述了改善设备性能的路线,以在此平台内实现量子转换。

Piezoelectric optomechanical platforms present one of the most promising routes towards efficient transduction of signals from the microwave to the optical frequency domains. New device architectures need to be developed in order to achieve the stringent requirements for building efficient quantum transducers. In this work, we utilize the mechanical supermode principle to improve the overall microwave to optical transduction efficiency, by fabricating Lamb wave resonators that are hybridized with the mechanical breathing modes of a rib waveguide in a suspended gallium arsenide (GaAs) photonic integrated circuits (PIC) platform. Combining the strong elasto-optic interactions available in GaAs with the increased phonon injection efficiency enabled by this architecture, we demonstrate signal transduction up to 7 GHz, and an increase in transduction efficiency by $\approx$ 25$\times$ for the hybridized mode ($f_m\approx$ 2 GHz), using this approach. We also outline routes for improving device performance to enable quantum transduction within this platform.

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