论文标题

可扩展的超精细量子量子态检测通过$ {}^2 $ d $ _ {5/2} $和$ {}^2 $ f $ _ {7/2} $歧管$ {}^{171} $ yb $ yb $^{+yb $^{+^{+} $

Scalable hyperfine qubit state detection via electron shelving in the ${}^2$D$_{5/2}$ and ${}^2$F$_{7/2}$ manifolds in ${}^{171}$Yb$^{+}$

论文作者

Edmunds, C. L., Tan, T. R., Milne, A. R., Singh, A., Biercuk, M. J., Hempel, C.

论文摘要

鉴于它们的长寿寿命和对磁场的敏感性低,但在量子的超细状态中编码的量他是量子计算的理想选择,但是在检测过程中,它们经常限制其测量延伸性。在$ {}^{171} $ yb $^{+} $中,这会因低荧光产量而加剧,这导致需要复杂且昂贵的硬件 - 这是一个有问题的瓶颈,尤其是在扩大Qubits数量时。我们演示了基于电子搁架的检测程序,以$ {}^{}^{171} $ yb $^{+} $解决此问题,并实现了5.6 $ \ times $减少avalanche photodiode上的单离子检测错误,以$ 1.8(2)\ times10^$ $ $ $ $ $ $ $ $ $ $ s n time $ n time $ s time time $ s。乘以CCD摄像头,以$ 7.7(2)\ times10^{ - 3} $错误400 $μ$ s。我们进一步提高了760 nm处的偏旋过渡的表征,以更快地重置辅助$^2 $ f $ _ {7/2} $状态。最后,我们使用长寿的$^2 $ f $ _ {7/2} $状态检查检测保真度限制,再实现300美元$ \ times $和12 $ \ times $降低到$ 6(7)\ times10^{ - 6} $和$ 6.3(3)(3)\ times10^(3)\ times10^{-4 4} $ insive。虽然在我们的设置中有限的搁架率有限,但我们建议以与量子信息处理相兼容的速度实现这种检测方法,从而为$ {}^{171} $ yb $^{+} $提供了超高保真度检测的途径。

Qubits encoded in hyperfine states of trapped ions are ideal for quantum computation given their long lifetimes and low sensitivity to magnetic fields, yet they suffer from off-resonant scattering during detection often limiting their measurement fidelity. In ${}^{171}$Yb$^{+}$ this is exacerbated by a low fluorescence yield, which leads to a need for complex and expensive hardware - a problematic bottleneck especially when scaling up the number of qubits. We demonstrate a detection routine based on electron shelving to address this issue in ${}^{171}$Yb$^{+}$ and achieve a 5.6$\times$ reduction in single-ion detection error on an avalanche photodiode to $1.8(2)\times10^{-3}$ in a 100 $μ$s detection period, and a 4.3$\times$ error reduction on an electron multiplying CCD camera, with $7.7(2)\times10^{-3}$ error in 400 $μ$s. We further improve the characterization of a repump transition at 760 nm to enable a more rapid reset of the auxiliary $^2$F$_{7/2}$ states populated after shelving. Finally, we examine the detection fidelity limit using the long-lived $^2$F$_{7/2}$ state, achieving a further 300$\times$ and 12$\times$ reduction in error to $6(7)\times10^{-6}$ and $6.3(3)\times10^{-4}$ in 1 ms on the respective detectors. While shelving-rate limited in our setup, we suggest various techniques to realize this detection method at speeds compatible with quantum information processing, providing a pathway to ultra-high fidelity detection in ${}^{171}$Yb$^{+}$.

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