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Trapped Ion Quantum Computing Superconducting Qubits

Experimental implementation of universal nonadiabatic geometric quantum gates in a superconducting circuit

arXiv
Authors: Yuan Xu, Ziyue Hua, Tao Chen, Xiaoxuan Pan, Xuegang Li, Jiaxiu Han, Weizhou Cai, Yuwei Ma, Haiyan Wang, Yipu Song, Zheng-Yuan Xue, Luyan Sun

Year

2019

Paper ID

15244

Status

Preprint

Abstract Read

~2 min

Abstract Words

117

Citations

N/A

Abstract

Using geometric phases to realize noise-resilient quantum computing is an important method to enhance the control fidelity. In this work, we experimentally realize a universal nonadiabatic geometric quantum gate set in a superconducting qubit chain. We characterize the realized single- and two-qubit geometric gates with both quantum process tomography and randomized benchmarking methods. The measured average fidelities for the single-qubit rotation gates and two-qubit controlled-Z gate are 0.9977(1) and 0.977(9), respectively. Besides, we also experimentally demonstrate the noise-resilient feature of the realized single-qubit geometric gates by comparing their performance with the conventional dynamical gates with different types of errors in the control field. Thus, our experiment proves a way to achieve high-fidelity geometric quantum gates for robust quantum computation.

Why This Paper Matters

  • This paper contributes to the Superconducting Qubits research area in the Quantum Articles archive.
  • It adds a 2019 reference point for readers tracking recent quantum research.
  • Using geometric phases to realize noise-resilient quantum computing is an important method to enhance the control fidelity.

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