Bilayer crystals of trapped ions for quantum information processing: Quantum control and applications

ORAL

Abstract

Linear chains and single-plane crystals of trapped ions have been extensively explored for applications in quantum information. However, multilayer arrays of trapped ions have hitherto been challenging to realize and have received far less attention from the quantum information perspective. We recently demonstrated that ion crystals in Penning traps can be extended beyond a single-plane geometry to form clean bilayer structures. In this talk, we discuss the quantum control capabilities and potential applications of such bilayer trapped ion crystals in quantum information processing. We show that this system can be used to realize iconic spin models such as the Ising and spin-exchange models in a bilayer geometry. Furthermore, the geometry and normal modes allow for the possibility to tune the interlayer and intralayer interactions on-the-fly, as well as to engineer chiral spin-exchange interactions. We discuss the potential applications enabled by these capabilities in generating and detecting bipartite entanglement, in distributed and variational quantum sensing, as well as in the quantum simulation of models of orbital magnetism and spintronics. Our exploration of bilayer crystals indicate that they can potentially serve as a versatile platform for a range of quantum applications.

*A.S. acknowledges the support of a C.V. Raman PostDoctoral Fellowship, IISc. S.H. acknowledges the support of Kishore Vaigyanik Protsahan Yojana, Department of Science and Technology, Government of India. A.L.C., A.M.R. and J.J.B. acknowledge funding from the U.S. Department of Energy, Office of Science, NQI Science Research Centers, Quantum Systems Accelerator (QSA), a collaboration between the U.S. Department of Energy, Office of Science and other agencies. A.M.R. acknowledges additional support from VBFF, ARO grant W911NF-16-1-0576, by the NSF JILA-PFC PHY-2317149, QLCI-OMA-2016244, and by NIST. J.J.B. acknowledges additional support from the DARPA ONISQ program and AFOSR grant FA9550- 201-0019.

Publication: S. Hawaldar, P. Shahi, A.L. Carter, A. M. Rey, J. J. Bollinger and A. Shankar, Bilayer Crystals of Trapped Ions for Quantum Information Processing, arXiv:2312.10681 (2023)

Presenters

  • Athreya Shankar

    • Indian Institute of Science Bangalore

Authors

  • Athreya Shankar

    • Indian Institute of Science Bangalore
  • Samarth Hawaldar

    • Institute of Science and Technology Austria
  • Prakriti Shahi

    • Institute of Technology, Bombay
  • Allison Carter

    • National Institute of Standards and Technology Boulder
    • Time and Frequency Div., NIST, Boulder, CO 80305
  • Ana Maria Rey

    • UC Boulder/JILA
    • University of Colorado, Boulder
    • JILA CU Boulder
    • CU Boulder, JILA
  • John J Bollinger

    • National Institute of Standards and Technology Boulder
    • Time and Frequency Div., NIST, Boulder, CO 80305