量子纠错
错误检测和纠正
量子位元
泄漏(经济)
可扩展性
物理
量子
量子计算机
缩放比例
计算机科学
算法
字错误率
电子工程
子空间拓扑
人口
量子信息
量子算法
量子力学
量子门
误码率
拓扑(电路)
偏移量(计算机科学)
编码(集合论)
编码(内存)
作者
Tan He,W. W. Lin,R. N. Wang,Yuan Li,Jiahao Bei,Jianbin Cai,Sirui Cao,Danning Chen,Kefu Chen,Xi Chen,Zhe Chen,Zhiyuan Chen,Zihua Chen,Wenhao Chu,Hu Deng,Xun Ding,Zhuzhengqi Ding,Bo Fan,Daojin Fan,Yuanhao Fu
摘要
Quantum error correction (QEC) enables practical quantum computing by encoding logical qubits in many physical qubits, which can exponentially suppress the logical error rate with increasing code size provided that the physical error rate is below a critical threshold. However, the leakage of quantum information from the computational subspace presents a critical challenge to the development of scalable QEC, which creates long-lived, correlated errors that spread across space and time. Here, we demonstrate a quantum memory operating below the threshold by implementing an all-microwave leakage suppression architecture on a distance-7 surface code. We achieve a logical error suppression factor of Λ=1.40(6), definitively reversing the above-threshold scaling (Λ<1) caused by unmitigated leakage. This scheme integrates a hardware-efficient leakage reduction unit for data qubits with a fast, unconditional reset for ancilla qubits, suppressing the average leakage population after 40 cycles by a factor of 72 to 6.4(5)×10^{-4}. Our results demonstrate the viability of all-microwave control architectures for suppressing critical errors at scale, paving the way for more advanced quantum error correction implementations.
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