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Optimal control of circuit quantum electrodynamics in one and two dimensions

Source: Phys. Rev. B 81, 085328 (2010); doi:10.1103/PhysRevB.81.085328

Published 23 February 2010

PACS
  • 03.67.Lx
    Quantum computation architectures and implementations
  • 85.25.-j
    Superconducting devices
  • 82.56.Jn
    Pulse sequences in NMR (of chemical processes)
  • YEAR: 2010
PUBLICATION DATA
ISSN:
1553-9644 (online)
Publisher:
AIP is a member of CrossRef APS
R. Fisher,1 F. Helmer,2 S. J. Glaser,1 F. Marquardt,2 and T. Schulte-Herbrüggen1
1Department of Chemistry, Technische Universität München, Lichtenbergstrasse 4, D-85747 Garching, Germany
2Department of Physics, Center for NanoScience, and Arnold Sommerfeld Center for Theoretical Physics, Ludwig Maximilians Universität München, Theresienstrasse 37, D-80333 Munich, Germany

Optimal control can be used to significantly improve multi-qubit gates in quantum information processing hardware architectures based on superconducting circuit quantum electrodynamics. We apply this approach not only to dispersive gates of two qubits inside a cavity, but, more generally, to architectures based on two-dimensional (2D) arrays of cavities and qubits. For high-fidelity gate operations, simultaneous evolutions of controls and couplings in the two coupling dimensions of cavity grids are shown to be significantly faster than conventional sequential implementations. Even under experimentally realistic conditions speedups by a factor of three can be gained. The methods immediately scale to large grids and indirect gates between arbitrary pairs of qubits on the grid. They are anticipated to be paradigmatic for 2D arrays and lattices of controllable qubits. ©2010 The American Physical Society
History: Received 24 November 2009; revised 27 January 2010; published 23 February 2010
Permalink: http://link.aps.org/abstract/PRB/v81/e085328
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