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Realization of Fast All-Microwave Controlled-Z Gates with a Tunable Coupler

Shaowei Li, D. Fan, M. Gong, Y. Ye, Xiawei Chen, Yulin Wu, Hui-Rui Guan, H. Deng, H. Rong, Heliang Huang, C. Zha, Kai Yan, Shaojun Guo, H. Qian, Haibin Zhang, Fusheng Chen, Qingling Zhu, You-Wei Zhao, Shiyu Wang, C. Ying, S. Cao, Jiale Yu, Futian Liang, Yu Xu, Jin Lin, Cheng Guo, Lihua Sun, Na Li, Lianchen Han, Cheng-Zhi Peng, Xiaobo Zhu, Jian-Wei Pan·February 1, 2022·DOI: 10.1088/0256-307X/39/3/030302
Physics

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Abstract

The development of high-fidelity two-qubit quantum gates is essential for digital quantum computing. Here, we propose and realize an all-microwave parametric controlled-Z (CZ) gates by coupling strength modulation in a superconducting Transmon qubit system with tunable couplers. After optimizing the design of the tunable coupler together with the control pulse numerically, we experimentally realized a 100 ns CZ gate with high fidelity of 99.38% ± 0.34% and the control error being 0.1%. We note that our CZ gates are not affected by pulse distortion and do not need pulse correction, providing a solution for the real-time pulse generation in a dynamic quantum feedback circuit. With the expectation of utilizing our all-microwave control scheme to reduce the number of control lines through frequency multiplexing in the future, our scheme draws a blueprint for the high-integrable quantum hardware design.

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