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Digital Quantum Simulation of the Schwinger Model and Symmetry Protection with Trapped Ions

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arxiv 2112.14262 v2 pith:UXMEBXN2 submitted 2021-12-28 quant-ph hep-lathep-phnucl-th

Digital Quantum Simulation of the Schwinger Model and Symmetry Protection with Trapped Ions

classification quant-ph hep-lathep-phnucl-th
keywords errorsexperimentallatticemodeldigitaldynamicsgaugephysical
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Tracking the dynamics of physical systems in real time is a prime application of digital quantum computers. Using a trapped-ion system with up to six qubits, we simulate the real-time dynamics of a lattice gauge theory in 1+1 dimensions, i.e., the lattice Schwinger model, and demonstrate non-perturbative effects such as pair creation for times much longer than previously accessible. We study the gate requirement of two formulations of the model using the Suzuki-Trotter product formula, as well as the trade-off between errors from the ordering of the Hamiltonian terms, the Trotter step size, and experimental imperfections. To mitigate experimental errors, a recent symmetry-protection protocol for suppressing coherent errors and a symmetry-inspired post-selection scheme are applied. This work demonstrates the integrated theoretical, algorithmic, and experimental approach that is essential for efficient simulation of lattice gauge theories and other complex physical systems.

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Cited by 3 Pith papers

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  2. The Quantum Complexity of String Breaking in the Schwinger Model

    hep-ph 2026-01 unverdicted novelty 6.0

    Quantum complexity measures applied to the Schwinger model reveal nonlocal correlations along the string and show that entanglement and magic give complementary views of string formation and breaking.

  3. A Framework for Quantum Simulations of Energy-Loss and Hadronization in Non-Abelian Gauge Theories: SU(2) Lattice Gauge Theory in 1+1D

    quant-ph 2025-12 conditional novelty 6.0

    A quantum simulation framework is developed and demonstrated for energy loss and hadronization of a heavy quark in 1+1D SU(2) lattice gauge theory on 18 qubits of IBM hardware, with results matching classical simulations.