Adiabatic coherent control in the anharmonic ion trap: Numerical analysis of vibrational anharmonicities

Lei Wang and Dmitri Babikov
Phys. Rev. A 83, 022305 – Published 7 February 2011; Erratum Phys. Rev. A 83, 029906 (2011)

Abstract

Anharmonicity of the quantized motional states of ions in a Paul trap can be utilized to address the state-to-state transitions selectively and control the motional modes of trapped ions coherently and adiabatically [Zhao and Babikov, Phys. Rev. A 77, 012338 (2008)]. In this paper we study two sources of the vibrational anharmonicity in the ion traps: the intrinsic Coulomb anharmonicity due to ion-ion interactions and the external anharmonicity of the trapping potential. An accurate numerical approach is used to compute energies and wave functions of vibrational eigenstates. The magnitude of the Coulomb anharmonicity is determined and shown to be insufficient for successful control. In contrast, anharmonicity of the trapping potential allows one to control the motion of ions very efficiently using the time-varying electric fields. Optimal control theory is used to derive the control pulses. One ion in a slightly anharmonic trap can be easily controlled. In the two- and three-ion systems the symmetric stretching mode is dark and cannot be controlled at all. The other two normal modes of the three-ion system can be controlled and used, for example, to encode a two-qubit system into the motional states of ions. A trap architecture that allows the necessary amount of vibrational anharmonicity to be achieved is proposed.

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  • Received 29 October 2010
  • Publisher error corrected 11 February 2011

DOI:https://doi.org/10.1103/PhysRevA.83.022305

©2011 American Physical Society

Corrections

11 February 2011

Erratum

Authors & Affiliations

Lei Wang and Dmitri Babikov*

  • Chemistry Department, Marquette University, PO Box 1881, Milwaukee, Wisconsin 53201, USA

  • *Corresponding author: dmitri.babikov@mu.edu

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Issue

Vol. 83, Iss. 2 — February 2011

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