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Superconducting cavity electro-optics: A platform for coherent photon conversion between superconducting and photonic circuits

机译:超导腔电光学:超导和光子电路之间相干光子转换的平台

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摘要

Leveraging the quantum information-processing ability of superconducting circuits and long-distance distribution ability of optical photons promises the realization of complex and large-scale quantum networks. In such a scheme, a coherent and efficient quantum transducer between superconducting and photonic circuits is critical. However, this quantum transducer is still challenging because the use of intermediate excitations in current schemes introduces extra noise and limits bandwidth. We realize direct and coherent transduction between superconducting and photonic circuits based on the triple-resonance electro-optic principle, with integrated devices incorporating both superconducting and optical cavities on the same chip. Electromagnetically induced transparency is observed, indicating the coherent interaction between microwave and optical photons. Internal conversion efficiency of 25.9 ± 0.3% has been achieved, with 2.05 ± 0.04% total efficiency. Superconducting cavity electro-optics offers broad transduction bandwidth and high scalability and represents a significant step toward integrated hybrid quantum circuits and distributed quantum computation.
机译:利用超导电路的量子信息处理能力和光子的远距离分布能力,有望实现复杂而大规模的量子网络。在这样的方案中,超导和光子电路之间的相干且高效的量子换能器至关重要。但是,这种量子换能器仍然具有挑战性,因为在当前方案中使用中间激励会引入额外的噪声并限制带宽。我们基于三谐振电光原理,在同一芯片上集成了超导腔和光腔的集成器件,实现了超导和光子电路之间的直接且相干的转换。观察到电磁感应的透明性,表明微波和光学光子之间的相干相互作用。内部转换效率达到25.9±0.3%,总效率为2.05±0.04%。超导腔电光学具有宽泛的转换带宽和高可扩展性,是朝着集成混合量子电路和分布式量子计算迈出的重要一步。

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