Sahu Rishabh, Hease William, Rueda Alfredo, Arnold Georg, Qiu Liu, Fink Johannes M
Institute of Science and Technology Austria, am Campus 1, 3400, Klosterneuburg, Austria.
Nat Commun. 2022 Mar 11;13(1):1276. doi: 10.1038/s41467-022-28924-2.
Solid-state microwave systems offer strong interactions for fast quantum logic and sensing but photons at telecom wavelength are the ideal choice for high-density low-loss quantum interconnects. A general-purpose interface that can make use of single photon effects requires < 1 input noise quanta, which has remained elusive due to either low efficiency or pump induced heating. Here we demonstrate coherent electro-optic modulation on nanosecond-timescales with only [Formula: see text] microwave input noise photons with a total bidirectional transduction efficiency of 8.7% (or up to 15% with [Formula: see text]), as required for near-term heralded quantum network protocols. The use of short and high-power optical pump pulses also enables near-unity cooperativity of the electro-optic interaction leading to an internal pure conversion efficiency of up to 99.5%. Together with the low mode occupancy this provides evidence for electro-optic laser cooling and vacuum amplification as predicted a decade ago.
固态微波系统为快速量子逻辑和传感提供了强大的相互作用,但电信波长的光子是高密度低损耗量子互连的理想选择。一个能够利用单光子效应的通用接口需要小于1个输入噪声量子,由于效率低下或泵浦诱导加热,这一点一直难以实现。在这里,我们展示了在纳秒时间尺度上的相干电光调制,仅使用[公式:见原文]个微波输入噪声光子,总双向转换效率为8.7%(使用[公式:见原文]时可达15%),这是近期预告量子网络协议所要求的。使用短而高功率的光泵浦脉冲还能实现电光相互作用的近单位协同性,从而使内部纯转换效率高达99.5%。再加上低模式占有率,这为十年前预测的电光激光冷却和真空放大提供了证据。