Motional squeezing for trapped ion transport and separation

ORAL

Abstract

Transport, separation, and merging of trapped ion crystals are essential operations for most large-scale quantum computing architectures. In this work, we develop a theoretical framework that describes the dynamics of ions in time-varying potentials with a motional squeeze operator, followed by a motional displacement operator. Using this framework, we develop a new, general protocol for trapped ion transport, separation, and merging. We show that motional squeezing can prepare an ion wave packet to enable faster shuttling from the ground state of one trapping potential to another. The framework and protocol are applicable if the potential is harmonic over the extent of the ion wave packets at all times. As illustrations, we discuss two specific operations: changing the strength of the confining potential for a single ion, and separating same-species ions with their mutual Coulomb force. Both of these operations are, ideally, free of residual motional excitation.

*This work was supported by the NIST Quantum Information Program. Part of this work was performed under the auspices of the U.S. Department of Energy by Lawrence Livermore National Laboratory under Contract DE-AC52-07NA27344.

Presenters

  • Robert T Sutherland

    • University of Texas at San Antonio, San Antonio
    • The University of Texas at San Antonio

Authors

  • Robert T Sutherland

    • University of Texas at San Antonio, San Antonio
    • The University of Texas at San Antonio
  • Shaun C Burd

    • National Institute of Standards and Technology Boulder
    • Stanford University
  • Daniel H Slichter

    • National Institute of Standards and Technology Boulder
  • Stephen B Libby

    • Lawrence Livermore Natl Lab
  • Dietrich Leibfried

    • National Institute of Standards and Technology Boulder