Quantum measurement of coherent tunneling between quantum dots

H. M. Wiseman, Dian Wahyu Utami, He Bi Sun, G. J. Milburn, B. E. Kane, A. Dzurak, and R. G. Clark
Phys. Rev. B 63, 235308 – Published 21 May 2001
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Abstract

We describe the conditional and unconditional dynamics of two coupled quantum dots when one dot is subjected to a measurement of its occupation number by coupling it to a third readout dot via the Coulomb interaction. The readout dot is coupled to source and drain leads under weak bias, and a tunnel current flows through a single bound state when energetically allowed. The occupation of the quantum dot near the readout dot shifts the bound state of the readout dot from a low conducting state to a high conducting state. The measurement is made by continuously monitoring the tunnel current through the readout dot. We show that there is a difference between the time scale for the measurement-induced decoherence between the localized states of the dots, and the time scale on which the system becomes localized due to the measurement.

  • Received 14 February 2000

DOI:https://doi.org/10.1103/PhysRevB.63.235308

©2001 American Physical Society

Authors & Affiliations

H. M. Wiseman1, Dian Wahyu Utami2, He Bi Sun2, G. J. Milburn2, B. E. Kane3, A. Dzurak4, and R. G. Clark4

  • 1School of Science, Griffith University, Queensland 4111 Australia
  • 2Centre for Quantum Computer Technology, The University of Queensland, Queensland 4072 Australia
  • 3Laboratory for Physical Sciences, College Park, Maryland 20740
  • 4Centre for Quantum Computer Technology, The University of New South Wales, Sydney 2052, Australia

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Issue

Vol. 63, Iss. 23 — 15 June 2001

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