English

High-fidelity and robust two-qubit gates for quantum-dot spin qubits in silicon

Quantum Physics 2019-04-05 v1 Mesoscale and Nanoscale Physics

Abstract

A two-qubit controlled-NOT (CNOT) gate, realized by a controlled-phase (C-phase) gate combined with single-qubit gates, has been experimentally implemented recently for quantum-dot spin qubits in isotopically enriched silicon, a promising solid-state system for practical quantum computation. In the experiments, the single-qubit gates have been demonstrated with fault-tolerant control-fidelity, but the infidelity of the two-qubit C-phase gate is, primarily due to the electrical noise, still higher than the required error threshold for fault-tolerant quantum computation (FTQC). Here, by taking the realistic system parameters and the experimental constraints on the control pulses into account, we construct experimentally realizable high-fidelity CNOT gates robust against electrical noise with the experimentally measured 1/f1.011/f^{1.01} noise spectrum and also against the uncertainty in the interdot tunnel coupling amplitude. Our optimal CNOT gate has about two orders of magnitude improvement in gate infidelity over the ideal C-phase gate constructed without considering any noise effect. Furthermore, within the same control framework, high-fidelity and robust single-qubit gates can also be constructed, paving the way for large-scale FTQC.

Keywords

Cite

@article{arxiv.1806.02858,
  title  = {High-fidelity and robust two-qubit gates for quantum-dot spin qubits in silicon},
  author = {Chia-Hsien Huang and C. H. Yang and Chien-Chang Chen and A. S. Dzurak and Hsi-Sheng Goan},
  journal= {arXiv preprint arXiv:1806.02858},
  year   = {2019}
}

Comments

6 pages, 2 figures

R2 v1 2026-06-23T02:22:54.673Z