4.6 Article

Engineering an effective three-spin Hamiltonian in trapped-ion systems for applications in quantum simulation

Journal

QUANTUM SCIENCE AND TECHNOLOGY
Volume 7, Issue 3, Pages -

Publisher

IOP Publishing Ltd
DOI: 10.1088/2058-9565/ac5f5b

Keywords

trapped ions; quantum simulation; lattice gauge theory; multi spin Hamiltonian

Funding

  1. European Union [847517]
  2. Fundacio Privada Cellex
  3. Fundacio Mir-Puig
  4. Generalitat de Catalunya [2017 SGR1341]
  5. ERDF Operational Program of Catalonia 2014-2020 [CAT U16-011424]
  6. Agencia Estatal de Investigacion [CEX2019-000910-S]
  7. PlanNational FIDEUA [PID2019-106901GB-I00/10.13039/501100011033]
  8. MINECO-EU QUANTERA MAQS [PCI2019-111828-2/10.13039/501100011033]
  9. EU [899794]
  10. ERC AdGNOQIA
  11. National Science Centre, Poland-Symfonia [2016/20/W/ST4/00314]
  12. 'la Caixa' Foundation [100010434, LCF/BQ/PI19/11690013]
  13. US Department of Energy's Office of Science Early Career Award [DE-SC0020271]
  14. DOE Office of Science, Office of Advanced Scientific Computing Research (ASCR) Quantum Computing Application Teams program [ERKJ347]
  15. DOE Office of Science, Office of Nuclear Physics [DE-SC0021143]
  16. NSF CAREER Award [PHY-2144910]
  17. Army Research Office [W911NF21P0003]
  18. Office of Naval Research [N00014-20-1-2695, N00014-22-1-2282]
  19. Chicago Prize Postdoctoral Fellowship in Theoretical Quantum Science
  20. U.S. Department of Energy (DOE) [DE-SC0020271, DE-SC0021143] Funding Source: U.S. Department of Energy (DOE)
  21. Marie Curie Actions (MSCA) [847517] Funding Source: Marie Curie Actions (MSCA)

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Trapped-ion quantum simulators utilizing the Molmer-Sorensen scheme to induce three-spin interactions are studied. The scheme allows for tailored single-, two-, and three-spin interactions and can be tuned for purely three-spin dynamics simulation. Analytical results and numerical simulations support the accuracy and feasibility of the scheme for near-term applications. The advantage of direct analog implementation of three-spin dynamics is demonstrated, and strategies for scaling the scheme to larger systems are discussed.
Trapped-ion quantum simulators, in analog and digital modes, are considered a primary candidate to achieve quantum advantage in quantum simulation and quantum computation. The underlying controlled ion-laser interactions induce all-to-all two-spin interactions via the collective modes of motion through Cirac-Zoller or Molmer-Sorensen schemes, leading to effective two-spin Hamiltonians, as well as two-qubit entangling gates. In this work, the Molmer-Sorensen scheme is extended to induce three-spin interactions via tailored first- and second-order spin-motion couplings. The scheme enables engineering single-, two-, and three-spin interactions, and can be tuned via an enhanced protocol to simulate purely three-spin dynamics. Analytical results for the effective evolution are presented, along with detailed numerical simulations of the full dynamics to support the accuracy and feasibility of the proposed scheme for near-term applications. With a focus on quantum simulation, the advantage of a direct analog implementation of three-spin dynamics is demonstrated via the example of matter-gauge interactions in the U(1) lattice gauge theory within the quantum link model. The mapping of degrees of freedom and strategies for scaling the three-spin scheme to larger systems, are detailed, along with a discussion of the expected outcome of the simulation of the quantum link model given realistic fidelities in the upcoming experiments. The applications of the three-spin scheme go beyond the lattice gauge theory example studied here and include studies of static and dynamical phase diagrams of strongly interacting condensed-matter systems modeled by two- and three-spin Hamiltonians.

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