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Optimal Model for Fewer-Qubit CNOT Gates with Rydberg Atoms

  • Rui Li
  • , Shurui Li
  • , Dongmin Yu
  • , Jing Qian*
  • , Weiping Zhang
  • *Corresponding author for this work
  • East China Normal University
  • Shanghai Jiao Tong University
  • Shanghai Research Center for Quantum Sciences
  • Shanxi University

Research output: Contribution to journalArticlepeer-review

Abstract

Fewer-qubit quantum logic gate, serving as a basic unit for constructing universal multiqubit gates, has been widely applied in quantum computing and quantum information. However, traditional constructions for fewer-qubit gates often utilize a multipulse protocol, which inevitably suffers from serious intrinsic errors during the gate execution. In this paper, we report an optimal model about universal two- and three-qubit cnot gates mediated by excitation to Rydberg states with easily accessible van der Waals interactions. This gate depends on a global optimization to implement amplitude- and phase-modulated pulses via genetic algorithm, which can facilitate the gate operation with fewer optical pulses. Compared to conventional multipulse piecewise schemes, our gate can be realized by simultaneous excitation of atoms to the Rydberg states, saving the time for multipulse switching at different spatial locations. Our numerical simulations show that a single-pulse two- (three-) qubit cnot gate is possibly achieved with a fidelity of 99.23% (90.39%) for two qubits separated by 7.10μm when the fluctuation of Rydberg interactions is excluded. Our work is promising for achieving fast and convenient multiqubit quantum computing in the study of neutral-atom quantum technology.

Original languageEnglish
Article numberA14
JournalPhysical Review Applied
Volume17
Issue number2
DOIs
StatePublished - Feb 2022

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