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估计相干时间超过一小时的单离子量子比特。

Single ion qubit with estimated coherence time exceeding one hour.

作者信息

Wang Pengfei, Luan Chun-Yang, Qiao Mu, Um Mark, Zhang Junhua, Wang Ye, Yuan Xiao, Gu Mile, Zhang Jingning, Kim Kihwan

机构信息

Center for Quantum Information, Institute for Interdisciplinary Information Sciences, Tsinghua University, 100084, Beijing, China.

Shenzhen Institute for Quantum Science and Engineering, and Department of Physics, Southern University of Science and Technology, 518055, Shenzhen, P. R. China.

出版信息

Nat Commun. 2021 Jan 11;12(1):233. doi: 10.1038/s41467-020-20330-w.

Abstract

Realizing a long coherence time quantum memory is a major challenge of current quantum technology. Until now, the longest coherence-time of a single qubit was reported as 660 s in a single Yb ion-qubit through the technical developments of sympathetic cooling and dynamical decoupling pulses, which addressed heating-induced detection inefficiency and magnetic field fluctuations. However, it was not clear what prohibited further enhancement. Here, we identify and suppress the limiting factors, which are the remaining magnetic-field fluctuations, frequency instability and leakage of the microwave reference-oscillator. Then, we observe the coherence time of around 5500 s for the Yb ion-qubit, which is the time constant of the exponential decay fit from the measurements up to 960 s. We also systematically study the decoherence process of the quantum memory by using quantum process tomography and analyze the results by applying recently developed resource theories of quantum memory and coherence. Our experimental demonstration will accelerate practical applications of quantum memories for various quantum information processing, especially in the noisy-intermediate-scale quantum regime.

摘要

实现长相干时间量子存储器是当前量子技术面临的一项重大挑战。到目前为止,通过共振冷却和动态解耦脉冲等技术发展,单个镱离子量子比特的最长相干时间在单个镱离子量子比特中被报道为660秒,这些技术解决了加热引起的检测效率低下和磁场波动问题。然而,尚不清楚是什么阻碍了进一步的提升。在这里,我们识别并抑制了限制因素,即剩余的磁场波动、频率不稳定性和微波参考振荡器的泄漏。然后,我们观察到镱离子量子比特的相干时间约为5500秒,这是从长达960秒的测量中指数衰减拟合的时间常数。我们还通过使用量子过程层析成像系统地研究了量子存储器的退相干过程,并应用最近发展的量子存储器和相干性资源理论对结果进行了分析。我们的实验演示将加速量子存储器在各种量子信息处理中的实际应用,特别是在噪声中等规模量子领域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0f8f/7801401/122a81084747/41467_2020_20330_Fig1_HTML.jpg

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