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Optimal state transfer and entanglement generation in power-law interacting systems

ORAL

Abstract

We present an optimal protocol for encoding an unknown qubit state into a multiqubit Greenberger-Horne-Zeilinger-like state and, consequently, transferring quantum information in large systems exhibiting power-law (1/rα) interactions. For all power-law exponents α between d and 2d+1, where d is the dimension of the system, the protocol yields a polynomial speedup for α>2d and a superpolynomial speedup for α≤2d, compared to the state of the art. For all α>d, the protocol saturates the Lieb-Robinson bounds (up to subpolynomial corrections), thereby establishing the optimality of the protocol and the tightness of the bounds in this regime. The protocol has a wide range of applications, including in quantum sensing, quantum computing, and preparation of topologically ordered states.

Presenters

  • Minh Tran

    University of Maryland, College Park

Authors

  • Minh Tran

    University of Maryland, College Park

  • Abhinav Deshpande

    University of Maryland, College Park, JQI/QuICS, NIST/University of Maryland, College Park

  • Andrew Guo

    University of Maryland, College Park, JQI/QuICS, NIST/University of Maryland, College Park

  • Andrew Lucas

    University of Colorado, Boulder

  • Alexey V Gorshkov

    University of Maryland, College Park, National Institute of Standards and Technology, JQI-NIST, Joint Quantum Institute and Joint Center for Quantum Information and Computer Science, NIST/University of Maryland, College Park, Joint Quantum Institute, University of Maryland / NIST, NIST