论文标题
相干光学微波接口,用于操纵低场电子时钟过渡中的$^{171} $ yb $^{3+} $:y $ _2 $ _2 $ _2 $ sio $ _5 $
Coherent optical-microwave interface for manipulation of low-field electronic clock transitions in $^{171}$Yb$^{3+}$:Y$_2$SiO$_5$
论文作者
论文摘要
固态旋转与光学和微波场的相干相互作用为一系列量子技术提供了一个平台,例如量子传感,微波至光学量子传输和光学量子记忆。在这种情况下,带有电子旋转的稀土离子很有趣,但是在长晶体上同时有效地将光学和微波过渡驱动到了挑战。在这项工作中,我们使用Loop-GAP微波谐振器在$^{171} $ yb $^{3+} $:y $ _2 $ _2 $ sio $ _5 $中相干地驱动光学和微波时钟过渡,以接近零外部磁场。低磁场状态对于将这些自旋转变与超导电路连接起来特别有趣。我们在1厘米长的晶体上达到2.497 GHz时的RABI频率为0.56 MHz。此外,我们提供了非常低场的自旋去向测定机理的新见解,表明超芬蛋白诱导的Hahn Echo信号的崩溃在低场上起着重要作用。我们的计算和测量结果表明,可以在$^{171} $ yb $^{3+} $中操纵有效的磁矩:y $ _2 $ _2 $ sio $ _5 $,允许在时钟过渡时抑制Superhyperfine的交互。以2 ppm的兴奋剂浓度和$ 3.4 $ K的温度,我们达到了最长的自旋连贯时间$ 10.0 \ pm 0.4〜 \ text {MS} $,以$^{171} $^{171} $ yb $^{3+} $:y $ _2 $ sio $ _5 $ _5 $。
The coherent interaction of solid-state spins with both optical and microwave fields provides a platform for a range of quantum technologies, such as quantum sensing, microwave-to-optical quantum transduction and optical quantum memories. Rare-earth ions with electronic spins are interesting in this context, but it is challenging to simultaneously and efficiently drive both optical and microwave transitions over a long crystal. In this work, we use a loop-gap microwave resonator to coherently drive optical and microwave clock transitions in $^{171}$Yb$^{3+}$:Y$_2$SiO$_5$, at close to zero external magnetic field. The low magnetic field regime is particularly interesting for interfacing these spin transitions with superconducting circuits. We achieve a Rabi frequency of 0.56 MHz at 2.497 GHz, over a 1-cm long crystal. Furthermore, we provide new insights into the spin dephasing mechanism at very low fields, showing that superhyperfine-induced collapse of the Hahn echo signal plays an important role at low fields. Our calculations and measurements reveal that the effective magnetic moment can be manipulated in $^{171}$Yb$^{3+}$:Y$_2$SiO$_5$, allowing to suppress the superhyperfine interaction at the clock transition. At a doping concentration of 2 ppm and a temperature of $3.4$ K, we achieve the longest spin coherence time of $10.0 \pm 0.4 ~\text{ms}$ reported in $^{171}$Yb$^{3+}$:Y$_2$SiO$_5$.