论文标题

薄膜锂锂中的腔电 - 晶状体,用于有效的微波至光学转导

Cavity electro-optics in thin-film lithium niobate for efficient microwave-to-optical transduction

论文作者

Holzgrafe, Jeffrey, Sinclair, Neil, Zhu, Di, Shams-Ansari, Amirhassan, Colangelo, Marco, Hu, Yaowen, Zhang, Mian, Berggren, Karl K., Lončar, Marko

论文摘要

通过微波光量子传感器将超导量子设备与光纤连接起来可能会启用大型量子网络。对于此应用,基于Pockels Electro-Octrot(EO)效应的换能器对于其直接转换机制,高带宽和低噪声操作的潜力有望。但是,先前证明的EO传感器需要大量的光泵功率来克服弱的EO耦合并达到高效率。在这里,我们在薄膜锂锂中创建了一个EO换能器,利用该平台的低光损耗和强烈的EO耦合。我们证明了最高$ 2.7 \ times10^{ - 5} $的转导效率,以及泵功率归一化效率为$ 1.9 \ times10^{ - 6}/\ mathrm {μw} $。可以通过进一步降低微波谐振器的压电耦合到声模式,从而提高转导效率,从而将光学谐振器质量因子提高到先前显示的水平,并改变电极几何形状以增强EO耦合。我们预计,随着进一步的开发,薄膜中的EO换能器可以通过低光泵功率实现近乎不合格的效率。

Linking superconducting quantum devices to optical fibers via microwave-optical quantum transducers may enable large scale quantum networks. For this application, transducers based on the Pockels electro-optic (EO) effect are promising for their direct conversion mechanism, high bandwidth, and potential for low-noise operation. However, previously demonstrated EO transducers require large optical pump power to overcome weak EO coupling and reach high efficiency. Here, we create an EO transducer in thin-film lithium niobate, leveraging the low optical loss and strong EO coupling in this platform. We demonstrate a transduction efficiency of up to $2.7\times10^{-5}$, and a pump-power normalized efficiency of $1.9\times10^{-6}/\mathrm{μW}$. The transduction efficiency can be improved by further reducing the microwave resonator's piezoelectric coupling to acoustic modes, increasing the optical resonator quality factor to previously demonstrated levels, and changing the electrode geometry for enhanced EO coupling. We expect that with further development, EO transducers in thin-film lithium niobate can achieve near-unity efficiency with low optical pump power.

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