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Observation of gauge invariance in a 71-site Bose-Hubbard quantum simulator

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arxiv 2003.08945 v2 pith:WQ7OK3AG submitted 2020-03-19 cond-mat.quant-gas hep-lathep-phphysics.atom-phquant-ph

classification cond-mat.quant-gashep-lathep-phphysics.atom-phquant-ph
keywords gaugequantumsymmetryfieldslocalmattertheoriesexperimentally
verification ladder T0 review T1 audit T2 compute T3 formal
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The modern description of elementary particles, as formulated in the Standard Model of particle physics, is built on gauge theories. Gauge theories implement fundamental laws of physics by local symmetry constraints. For example, in quantum electrodynamics, Gauss's law introduces an intrinsic local relation between charged matter and electromagnetic fields, which protects many salient physical properties including massless photons and a long-ranged Coulomb law. Solving gauge theories by classical computers is an extremely arduous task, which has stimulated a vigorous effort to simulate gauge-theory dynamics in microscopically engineered quantum devices. Previous achievements implemented density-dependent Peierls phases without defining a local symmetry, realized mappings onto effective models to integrate out either matter or electric fields, or were limited to very small systems. The essential gauge symmetry has not been observed experimentally. Here, we report the quantum simulation of an extended U(1) lattice gauge theory, and experimentally quantify the gauge invariance in a many-body system comprising matter and gauge fields. These are realized in defect-free arrays of bosonic atoms in an optical superlattice of 71 sites. We demonstrate full tunability of the model parameters and benchmark the matter--gauge interactions by sweeping across a quantum phase transition. Enabled by high-fidelity manipulation techniques, we measure the degree to which Gauss's law is violated by extracting probabilities of locally gauge-invariant states from correlated atom occupations. Our work provides a way to explore gauge symmetry in the interplay of fundamental particles using controllable large-scale quantum simulators.

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Cited by 4 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Exponential speedup in quantum simulation of Kogut-Susskind Hamiltonian via orbifold lattice

    quant-ph 2025-05 conditional novelty 6.0 of 10

    The Kogut-Susskind Hamiltonian is recovered from the orbifold lattice Hamiltonian in the infinite scalar mass limit, with numerical confirmation for SU(2) and SU(3) Yang-Mills theory in 2+1 dimensions.

  2. Observation of Robust and Coherent Non-Abelian Hadron Dynamics on Noisy Quantum Processors

    hep-lat 2026-02 reject novelty 5.0 of 10

    A 60-site SU(2) lattice gauge theory was run on 120 qubits, but the implemented dynamics approximate to non-interacting fermion hopping, and the abstract's claimed breathing-mode frequency is not extracted anywhere.

  3. Quantum computing of chirality imbalance in SU(2) gauge theory

    hep-ph 2024-11 conditional novelty 5.0 of 10

    A variational quantum algorithm with Monte Carlo sampling reproduces the exact thermal chiral condensate in 1+1D SU(2) gauge theory on 8 to 12 qubits and on IBM hardware.

  4. Quantum Simulation of Large N Lattice Gauge Theories

    hep-lat 2024-11 conditional novelty 3.0 of 10

    At leading order in 1/N_c, SU(3) lattice Yang-Mills reduces to a PXP spin model with one qubit per plaquette, enabling simpler quantum simulation encodings.

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