Charge-based quantum computing using single donors in semiconductors

L. C. L. Hollenberg, A. S. Dzurak, C. Wellard, A. R. Hamilton, D. J. Reilly, G. J. Milburn, and R. G. Clark
Phys. Rev. B 69, 113301 – Published 11 March 2004
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Abstract

Solid-state quantum computer architectures with qubits encoded using single atoms are now feasible given recent advances in the atomic doping of semiconductors. Here we present a charge qubit consisting of two dopant atoms in a semiconductor crystal, one of which is singly ionized. Surface electrodes control the qubit and a radio-frequency single-electron transistor provides fast readout. The calculated single gate times, of order 50 ps or less, are much shorter than the expected decoherence time. We propose universal one- and two-qubit gate operations for this system and discuss prospects for fabrication and scale up.

  • Received 29 September 2003

DOI:https://doi.org/10.1103/PhysRevB.69.113301

©2004 American Physical Society

Authors & Affiliations

L. C. L. Hollenberg1, A. S. Dzurak2, C. Wellard1, A. R. Hamilton2, D. J. Reilly2, G. J. Milburn3, and R. G. Clark2

  • 1Centre for Quantum Computer Technology, School of Physics, University of Melbourne, VIC 3010, Australia
  • 2Centre for Quantum Computer Technology, Schools of Physics and Electrical Engineering, University of New South Wales, NSW 2052, Australia
  • 3Centre for Quantum Technology, School of Physics, University of Queensland, QLD 4072, Australia

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Vol. 69, Iss. 11 — 15 March 2004

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