论文标题
高效微波光量子量子转导,基于腔体电孔超导系统的较长连贯性时间
High-efficiency microwave-optical quantum transduction based on a cavity electro-optic superconducting system with long coherence time
论文作者
论文摘要
微波和光光子之间的频率转换是一种关键的促进技术,可以在超导量子处理器之间建立联系并实现分布式量子网络。我们提出了一个基于长偶尔时间超导射频(SRF)腔的微波光转导平台,该腔与电磁光腔相连,以减轻限制高转换效率的损失机制。在设计中,我们优化了微波光场重叠和光学耦合损耗,同时在毫克凯文温度下实现了长的微波和光光子寿命。这代表了在140 $μ$ W下高达50%的转导效率的显着提高,对应于少量量子量子。此外,该方案表现出高分辨率,用于光学地读取由与SRF腔耦合的超导式转移量子量子诱导的分散移位。我们还表明,低微波损耗增强了两个远程量子系统之间的纠缠产生的忠诚度。最后,可以在标准量子限制以下达到量子传感的高精度。
Frequency conversion between microwave and optical photons is a key enabling technology to create links between superconducting quantum processors and to realize distributed quantum networks. We propose a microwave-optical transduction platform based on long-coherence-time superconducting radio-frequency (SRF) cavities coupled to electro-optic optical cavities to mitigate the loss mechanisms that limit the attainment of high conversion efficiency. In the design, we optimize the microwave-optical field overlap and optical coupling losses, while achieving long microwave and optical photon lifetime at milli-Kelvin temperatures. This represents a significant enhancement of the transduction efficiency up to 50% under pump power of 140$μ$W, corresponding to few-photon quantum regime. Furthermore, this scheme exhibits high resolution for optically reading out the dispersive shift induced by a superconducting transmon qubit coupled to the SRF cavity. We also show that the fidelity of heralded entanglement generation between two remote quantum systems is enhanced by the low microwave losses. Finally, high-precision in quantum sensing can be reached below the standard quantum limit.