Quantifying quantum coherence of multiple-charge states in tunable Josephson junctions

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作者
Jiangbo He
Dong Pan
Mingli Liu
Zhaozheng Lyu
Zhongmou Jia
Guang Yang
Shang Zhu
Guangtong Liu
Jie Shen
Sergey N. Shevchenko
Franco Nori
Jianhua Zhao
Li Lu
Fanming Qu
机构
[1] Chinese Academy of Sciences,Beijing National Laboratory for Condensed Matter Physics, Institute of Physics
[2] Chinese Academy of Sciences,State Key Laboratory of Superlattices and Microstructures, Institute of Semiconductors
[3] University of Chinese Academy of Sciences,School of Physical Sciences
[4] Hefei National Laboratory,Theoretical Quantum Physics Laboratory
[5] Songshan Lake Materials Laboratory,Physics Department
[6] B. Verkin Institute for Low Temperature Physics and Engineering,undefined
[7] Cluster for Pioneering Research,undefined
[8] RIKEN,undefined
[9] Quantum Computing Center,undefined
[10] RIKEN,undefined
[11] The University of Michigan,undefined
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摘要
Coherence and tunneling play central roles in quantum phenomena. In a tunneling event, the time that a particle spends inside the barrier has been fiercely debated. This problem becomes more complex when tunneling repeatedly occurs back and forth, and when involving many particles. Here we report the measurement of the coherence time of various charge states tunneling in a nanowire-based tunable Josephson junction; including single charges, multiple charges, and Cooper pairs. We studied all the charge tunneling processes using Landau-Zener-Stückelberg-Majorana (LZSM) interferometry, and observed high-quality interference patterns under a microwave drive. In particular, the coherence time of the charge states tunneling back and forth was extracted from the interference fringes in Fourier space. In addition, our measurements show the break-up of Cooper pairs, from a macroscopic quantum coherent state to individual particle states. Besides the fundamental research interest, our results also establish LZSM interferometry as a powerful technique to explore the coherence time of charges in hybrid devices.
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