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Steady-state Entanglement Engineering based on Electron Transfer Models

ORAL

Abstract

We propose a series of dissipation-driven entanglement generation protocols that can be implemented on a trapped-ion quantum simulator. Our approach builds on the single-site molecular electron transfer (ET) model recently realized in the experiment [So et al. Sci. Adv. 10, ads8011 (2024)]. This model leverages spin-dependent boson displacement and dissipation controlled by sympathetic cooling. We show that, when coupled to external degrees of freedom, the ET model can be used as a quantum control mechanism, enabling the precise tailoring of both spin and phonon steady state of a target sub-system. We derive simplified analytical formalisms that offer intuitive insights into the dissipative dynamics. Using realistic interactions in a trapped ion system, we develop a protocol for generating N-qubit and N-boson W states. Additionally, we generalize this protocol to realize a generic N-qubit Dicke states with tunable excitation numbers. Finally, we outline a potential experimental setup to implement our scheme.

Presenters

  • Mingjian Zhu

    Rice University

Authors

  • Mingjian Zhu

    Rice University

  • Visal So

    Rice University, Physics and astronomy, Rice University and Smalley-Curl Institute, Houston, TX 77005, USA

  • Guido Pagano

    Rice University, Physics and astronomy, Rice University and Smalley-Curl Institute, Houston, TX 77005, USA

  • Han Pu

    Rice University