English

Quantum computer-based simulation of Stark many-body localization in a 1D Fermi-Hubbard model

Quantum Physics 2026-08-03 v1 Other Condensed Matter

Abstract

Many-body localization (MBL) is a dynamical phenomenon that describes the non-ergodicity of isolated quantum many-body systems. In contrast to thermalization, this phenomenon leads to a long-lived memory of initial states of local systems and slow growth of entanglement. In this work, we study Stark MBL in a 12-qubit correlated fermionic system described by the one-dimensional Fermi-Hubbard model using Hamiltonian simulation on an IBM superconducting qubit quantum computer. To enable such a computation on current-day noisy hardware, we combine a series of compilation steps, including the use of the spin-resolved Jordan-Wigner transformation, employing SWAP networks, and integrating a tensor-network-based quantum circuit optimization routine on top of a standard circuit optimization pipeline. As a result, there is approximately an 88%\% and 87%\% reduction in two-qubit gate count and circuit depth, respectively. Through such simulations of the real-time dynamics using Trotterized quantum circuits, we exhibit a crossover from thermalizing dynamics of the system at a weak tilt of the field to a strongly localized behavior at large tilt with short evolution times. We also benchmark our obtained results with respect to those from exact simulations.

Keywords

Cite

@article{arxiv.2608.02245,
  title  = {Quantum computer-based simulation of Stark many-body localization in a 1D Fermi-Hubbard model},
  author = {Abdul Kalam and Prasenjit Deb and Akitada Sakurai and Tapan Mishra and V. S. Prasannaa and B. P. Das},
  journal= {arXiv preprint arXiv:2608.02245},
  year   = {2026}
}

Comments

13 pages , 7 figures, and 1 table; Comments are welcome