Logical operations with a dynamical qubit in Floquet-Bacon-Shor code

Fuente: arXiv
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Main Authors: Sun, Xuandong, Li, Longcheng, Wu, Zhiyi, Guo, Zechen, Huang, Peisheng, Huang, Wenhui, Li, Qixian, Liang, Yongqi, Liu, Yiting, Sun, Daxiong, Wang, Zilin, Xie, Changrong, Xiong, Yuzhe, Yang, Xiaohan, Zhang, Jiajian, Zhang, Jiawei, Zhang, Libo, Zhang, Zihao, Guo, Weijie, Jiang, Ji, Liu, Song, Linpeng, Xiayu, Niu, Jingjing, Qiu, Jiawei, Ren, Wenhui, Tao, Ziyu, Yuan, Yuefeng, Zhou, Yuxuan, Chu, Ji, Zhong, Youpeng, Sun, Xiaoming, Yu, Dapeng
Format: Preprint
Published: 2025
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author Sun, Xuandong
Li, Longcheng
Wu, Zhiyi
Guo, Zechen
Huang, Peisheng
Huang, Wenhui
Li, Qixian
Liang, Yongqi
Liu, Yiting
Sun, Daxiong
Wang, Zilin
Xie, Changrong
Xiong, Yuzhe
Yang, Xiaohan
Zhang, Jiajian
Zhang, Jiawei
Zhang, Libo
Zhang, Zihao
Guo, Weijie
Jiang, Ji
Liu, Song
Linpeng, Xiayu
Niu, Jingjing
Qiu, Jiawei
Ren, Wenhui
Tao, Ziyu
Yuan, Yuefeng
Zhou, Yuxuan
Chu, Ji
Zhong, Youpeng
Sun, Xiaoming
Yu, Dapeng
author_facet Sun, Xuandong
Li, Longcheng
Wu, Zhiyi
Guo, Zechen
Huang, Peisheng
Huang, Wenhui
Li, Qixian
Liang, Yongqi
Liu, Yiting
Sun, Daxiong
Wang, Zilin
Xie, Changrong
Xiong, Yuzhe
Yang, Xiaohan
Zhang, Jiajian
Zhang, Jiawei
Zhang, Libo
Zhang, Zihao
Guo, Weijie
Jiang, Ji
Liu, Song
Linpeng, Xiayu
Niu, Jingjing
Qiu, Jiawei
Ren, Wenhui
Tao, Ziyu
Yuan, Yuefeng
Zhou, Yuxuan
Chu, Ji
Zhong, Youpeng
Sun, Xiaoming
Yu, Dapeng
contents Quantum error correction (QEC) protects quantum systems against inevitable noises and control inaccuracies, providing a pathway towards fault-tolerant (FT) quantum computation. Stabilizer codes, including surface code and color code, have long been the focus of research and have seen significant experimental progress in recent years. Recently proposed time-dynamical QEC, including Floquet codes and generalized time-dynamical code implementations, opens up new opportunities for FT quantum computation. By employing a periodic schedule of low-weight parity checks, Floquet codes can generate additional dynamical logical qubits, offering enhanced error correction capabilities and potentially higher code performance. Here, we experimentally implement the Floquet-Bacon-Shor code on a superconducting quantum processor. We encode a dynamical logical qubit within a $3\times 3$ lattice of data qubits, alongside a conventional static logical qubit. We demonstrate FT encoding and measurement of the two-qubit logical states, and stabilize these states using repeated error detection. We showcase universal single-qubit logical gates on the dynamical qubit. Furthermore, by implementing a logical CNOT gate, we entangle the dynamical and static logical qubits, generating an error-detected logical Bell state with a fidelity of 75.9\%. Our results highlight the potential of Floquet codes for resource-efficient FT quantum computation.
format Preprint
id arxiv_https___arxiv_org_abs_2503_03867
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Logical operations with a dynamical qubit in Floquet-Bacon-Shor code
Sun, Xuandong
Li, Longcheng
Wu, Zhiyi
Guo, Zechen
Huang, Peisheng
Huang, Wenhui
Li, Qixian
Liang, Yongqi
Liu, Yiting
Sun, Daxiong
Wang, Zilin
Xie, Changrong
Xiong, Yuzhe
Yang, Xiaohan
Zhang, Jiajian
Zhang, Jiawei
Zhang, Libo
Zhang, Zihao
Guo, Weijie
Jiang, Ji
Liu, Song
Linpeng, Xiayu
Niu, Jingjing
Qiu, Jiawei
Ren, Wenhui
Tao, Ziyu
Yuan, Yuefeng
Zhou, Yuxuan
Chu, Ji
Zhong, Youpeng
Sun, Xiaoming
Yu, Dapeng
Quantum Physics
Quantum error correction (QEC) protects quantum systems against inevitable noises and control inaccuracies, providing a pathway towards fault-tolerant (FT) quantum computation. Stabilizer codes, including surface code and color code, have long been the focus of research and have seen significant experimental progress in recent years. Recently proposed time-dynamical QEC, including Floquet codes and generalized time-dynamical code implementations, opens up new opportunities for FT quantum computation. By employing a periodic schedule of low-weight parity checks, Floquet codes can generate additional dynamical logical qubits, offering enhanced error correction capabilities and potentially higher code performance. Here, we experimentally implement the Floquet-Bacon-Shor code on a superconducting quantum processor. We encode a dynamical logical qubit within a $3\times 3$ lattice of data qubits, alongside a conventional static logical qubit. We demonstrate FT encoding and measurement of the two-qubit logical states, and stabilize these states using repeated error detection. We showcase universal single-qubit logical gates on the dynamical qubit. Furthermore, by implementing a logical CNOT gate, we entangle the dynamical and static logical qubits, generating an error-detected logical Bell state with a fidelity of 75.9\%. Our results highlight the potential of Floquet codes for resource-efficient FT quantum computation.
title Logical operations with a dynamical qubit in Floquet-Bacon-Shor code
topic Quantum Physics
url https://arxiv.org/abs/2503.03867