Suppressing Coherent Two-Qubit Errors via Dynamical Decoupling

Scalable quantum information processing requires the ability to tune multi-qubit interactions. This makes the precise manipulation of quantum states particularly difficult for multi-qubit interactions because tunability unavoidably introduces sensitivity to fluctuations in the tuned parameters, lead...

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Veröffentlicht in:arXiv.org 2021-04
Hauptverfasser: Qiu, Jiawei, Zhou, Yuxuan, Chang-Kang, Hu, Yuan, Jiahao, Zhang, Libo, Chu, Ji, Huang, Wenhui, Liu, Weiyang, Luo, Kai, Ni, Zhongchu, Pan, Xianchuang, Yang, Zhixuan, Zhang, Yimeng, Chen, Yuanzhen, Xiu-Hao Deng, Hu, Ling, Li, Jian, Niu, Jingjing, Xu, Yuan, Tongxing Yan, Zhong, Youpeng, Liu, Song, Yan, Fei, Yu, Dapeng
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Sprache:eng
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Zusammenfassung:Scalable quantum information processing requires the ability to tune multi-qubit interactions. This makes the precise manipulation of quantum states particularly difficult for multi-qubit interactions because tunability unavoidably introduces sensitivity to fluctuations in the tuned parameters, leading to erroneous multi-qubit gate operations. The performance of quantum algorithms may be severely compromised by coherent multi-qubit errors. It is therefore imperative to understand how these fluctuations affect multi-qubit interactions and, more importantly, to mitigate their influence. In this study, we demonstrate how to implement dynamical-decoupling techniques to suppress the two-qubit analogue of the dephasing on a superconducting quantum device featuring a compact tunable coupler, a trending technology that enables the fast manipulation of qubit--qubit interactions. The pure-dephasing time shows an up to ~14 times enhancement on average when using robust sequences. The results are in good agreement with the noise generated from room-temperature circuits. Our study further reveals the decohering processes associated with tunable couplers and establishes a framework to develop gates and sequences robust against two-qubit errors.
ISSN:2331-8422
DOI:10.48550/arxiv.2104.02669