Coherent control of electron spin qubits in silicon using a global field

ORAL

Abstract

Spin-based silicon quantum electronic circuits offer a scalable platform for quantum computation, combining the manufacturability of semiconductor devices with the long coherence times afforded by spins in silicon. Advancing from current few-qubit devices to silicon quantum processors with upwards of a million qubits, as required for fault-tolerant operation, presents several unique challenges, one of the most demanding being the ability to deliver microwave signals for large-scale qubit control. Here we demonstrate a potential solution to this problem by using a 3D dielectric resonator to broadcast a global microwave signal across a quantum nanoelectronic circuit. Critically, this technique utilizes only a single microwave source and is capable of delivering control signals to millions of qubits simultaneously. We first show that the global field can be used to perform spin resonance of single electrons confined in a natural silicon double quantum dot device [1]. Then, by switching to an isotopically purified device, we report coherent Rabi oscillations of single electron spin qubits using a global magnetic field generated off-chip [2]. The observation of coherent qubit control driven by a dielectric resonator establishes a credible pathway to achieving large-scale control in a spin-based quantum computer.

*The authors acknowledge support from the Australian Research Council (DE190101397, FL190100167 and CE170100012), the US Army Research Office (W911NF-17-1-0198) and the NSW Node of the Australian National Fabrication Facility. The views and conclusions contained in this document are those of the authors and should not be interpreted as representing the official policies, either expressed or implied, of the Army Research Office or the US Government. E.V. and J.P.S.-S. acknowledge support from Sydney Quantum Academy. The authors thank Peter Becker for the preparation of the isotopically-purified silicon substrate.

Publication: [1] Vahapoglu, E., Slack-Smith, J. P., Leon, R. C., Lim, W. H., Hudson, F. E., Day, T., ... & Pla, J. J. (2021). Single-electron spin resonance in a nanoelectronic device using a global field. Science Advances, 7(33), eabg9158.
[2] Vahapoglu, E., Slack-Smith, J. P., Leon, R. C. C., Lim, W. H., Hudson, F. E., Day, T., ... & Pla, J. J. (2021). Coherent control of electron spin qubits in silicon using a global field. arXiv preprint arXiv:2107.14622.

Presenters

  • Ensar Vahapoglu

    • University of New South Wales

Authors

  • Ensar Vahapoglu

    • University of New South Wales
  • James Slack-Smith

    • University of New South Wales
  • Ross C. C. Leon

    • University of New South Wales
  • Wee Han Lim

    • University of New South Wales
  • Fay E Hudson

    • University of New South Wales
    • Centre for Quantum Computation and Communication Technology, School of Electrical Engineering and Telecommunications, UNSW Sydney, New South Wales 2052, Australia.
  • Tom Day

    • University of New South Wales
  • Jesus D Cifuentes Pardo

    • University of New South Wales
  • Tuomo I Tanttu

    • University of New South Wales
  • Chih-Hwan Yang

    • University of New South Wales
  • Andre Saraiva

    • University of New South Wales
  • Michael Thewalt

    • Simon Fraser University
    • Simon Fraser Univ
  • Nikolay (N.V.) Abrosimov

    • Leibniz Institute for Crystal Growth
  • Hans-Joachim Pohl

    • VITCON Projectconsult
  • Arne Laucht

    • University of New South Wales
  • Andrew S Dzurak

    • University of New South Wales
    • Centre for Quantum Computation and Communication Technology, School of Electrical Engineering and Telecommunications, UNSW Sydney, New South Wales 2052, Australia.
  • Jarryd J Pla

    • School of Electrical Engineering and Telecommunications, UNSW Sydney
    • School of Electrical Engineering and Telecommunications, UNSW Sydney, Sydney, NSW 2052, Australia
    • University of New South Wales