Physical Review Research (Jan 2024)

Quantum simulation of the one-dimensional Fermi-Hubbard model as a Z_{2} lattice-gauge theory

  • Uliana E. Khodaeva,
  • Dmitry L. Kovrizhin,
  • Johannes Knolle

DOI
https://doi.org/10.1103/PhysRevResearch.6.013032
Journal volume & issue
Vol. 6, no. 1
p. 013032

Abstract

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The Fermi-Hubbard model is one of the central paradigms in the physics of strongly correlated quantum many-body systems. Here we propose a quantum circuit algorithm based on the Z_{2} lattice gauge theory (LGT) representation of the one-dimensional Fermi-Hubbard model, which is suitable for implementation on current NISQ quantum computers. Within the LGT description there is an extensive number of local conserved quantities commuting with the Hamiltonian. We show how these conservation laws can be used to implement an efficient error-mitigation scheme. The latter is based on a postselection of states for noisy quantum simulators. While the LGT description requires a deeper quantum-circuit compared to a Jordan-Wigner (JW) based approach, remarkably, we find that our error-correction protocol leads to results being on par with a standard JW implementation on noisy quantum simulators.