TY - GEN
T1 - Research on FPGA-Based Electronic System for Active Reset of Superconducting Qubits
AU - Lu, Yaping
AU - Chen, Yifei
AU - Ma, Maojie
AU - Tian, Liyu
AU - Wu, Qiongzhi
N1 - Publisher Copyright:
© 2025 IEEE.
PY - 2025
Y1 - 2025
N2 - Active reset of qubits is a critical step toward realizing large-scale quantum error correction(QEC) algorithms, as it enables rapid initialization of qubits to the ground state and enhances the accuracy of quantum computing. In this paper, we address the issues of existing active reset schemes that require faster feedback speeds, higher flexibility, and integration in multichannel operations. We propose a highly scalable, integrated, low-latency feedback closed-loop measurement and control system that supports local decision-making and independent judgment. The system achieves precise timing control, parameterized waveform generation, high-fidelity demodulation and decision-making computations, and rapid closed-loop feedback links. Experimental results show that the total latency of the closed-loop feedback is 243 ns, and the active reset test success rate reaches 99.5%, representing significant improvements in both efficiency and precision compared to traditional passive reset methods. Through modular design, the system supports multi-board expansion and can be adapted for concurrent reset control of large-scale qubit chips.
AB - Active reset of qubits is a critical step toward realizing large-scale quantum error correction(QEC) algorithms, as it enables rapid initialization of qubits to the ground state and enhances the accuracy of quantum computing. In this paper, we address the issues of existing active reset schemes that require faster feedback speeds, higher flexibility, and integration in multichannel operations. We propose a highly scalable, integrated, low-latency feedback closed-loop measurement and control system that supports local decision-making and independent judgment. The system achieves precise timing control, parameterized waveform generation, high-fidelity demodulation and decision-making computations, and rapid closed-loop feedback links. Experimental results show that the total latency of the closed-loop feedback is 243 ns, and the active reset test success rate reaches 99.5%, representing significant improvements in both efficiency and precision compared to traditional passive reset methods. Through modular design, the system supports multi-board expansion and can be adapted for concurrent reset control of large-scale qubit chips.
KW - Active Reset
KW - High Flexibility
KW - High Integration
KW - Real-Time
KW - Superconducting Quantum
UR - https://www.scopus.com/pages/publications/105018458895
U2 - 10.1109/IAEAC65194.2025.11166144
DO - 10.1109/IAEAC65194.2025.11166144
M3 - Conference contribution
AN - SCOPUS:105018458895
T3 - IEEE Advanced Information Technology, Electronic and Automation Control Conference (IAEAC)
SP - 728
EP - 733
BT - IAEAC 2025 - IEEE 8th Advanced Information Technology, Electronic and Automation Control Conference
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 8th IEEE Advanced Information Technology, Electronic and Automation Control Conference, IAEAC 2025
Y2 - 8 August 2025 through 10 August 2025
ER -