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利用相位稳定驻波突破囚禁离子量子比特的纠缠门速度限制

Breaking the Entangling Gate Speed Limit for Trapped-Ion Qubits Using a Phase-Stable Standing Wave.

作者信息

Saner S, Băzăvan O, Minder M, Drmota P, Webb D J, Araneda G, Srinivas R, Lucas D M, Ballance C J

机构信息

Department of Physics, University of Oxford, Clarendon Laboratory, Parks Road, Oxford OX1 3PU, United Kingdom.

出版信息

Phys Rev Lett. 2023 Dec 1;131(22):220601. doi: 10.1103/PhysRevLett.131.220601.

Abstract

All laser-driven entangling operations for trapped-ion qubits have hitherto been performed without control of the optical phase of the light field, which precludes independent tuning of the carrier and motional coupling. By placing ^{88}Sr^{+} ions in a λ=674  nm standing wave, whose relative position is controlled to ≈λ/100, we suppress the carrier coupling by a factor of 18, while coherently enhancing the spin-motion coupling. We experimentally demonstrate that the off-resonant carrier coupling imposes a speed limit for conventional traveling-wave Mølmer-Sørensen gates; we use the standing wave to surpass this limit and achieve a gate duration of 15  μs, restricted by the available laser power.

摘要

迄今为止,所有用于囚禁离子量子比特的激光驱动纠缠操作都是在不控制光场光学相位的情况下进行的,这使得无法独立调节载波和运动耦合。通过将(^{88}Sr^{+})离子置于波长(\lambda = 674)nm的驻波中,其相对位置控制在约(\lambda/100),我们将载波耦合抑制了18倍,同时相干增强了自旋 - 运动耦合。我们通过实验证明,非共振载波耦合对传统行波莫尔 - 索伦森门施加了速度限制;我们使用驻波超越了这一限制,并实现了15μs的门持续时间,该持续时间受可用激光功率限制。

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