Real-Time Dynamics in a (2+1)-D Gauge Theory: The Stringy Nature on a Superconducting Quantum Simulator
Authors/Creators
-
1.
University of the Basque Country
- 2. IBM Quantum, IBM Thomas J Watson Research Center, Yorktown Heights, NY 10598, USA
- 3. Instituto de F´ısica Te´orica, UAM-CSIC, Universidad Aut´onoma de Madrid, Cantoblanco, 28049 Madrid, Spain
- 4. EHU Quantum Center and Department of Physical Chemistry, University of the Basque Country UPV/EHU, P.O. Box 644, 48080 Bilbao, Spain
- 5. Strongly Correlated Systems Lend¨ulet Research Group, Wigner Research Centre for Physics, H-1525, Budapest, Hungary
- 6. European Organization for Nuclear Research
- 7. Ikerbasque, Basque Foundation for Science
- 8. Next Generation Triggers
Description
Understanding the confinement mechanism in gauge theories and the universality of effective string-like descriptions of gauge flux tubes remains a fundamental challenge in modern physics. We probe string modes of motion with dynamical matter in a digital quantum simulation of a (2+1) dimensional gauge theory using a superconducting quantum processor with up to 144 qubits, stretching the hardware capabilities with quantum-circuit depths comprising up to 192 two-qubit layers. We realize the -Higgs model ( HM) through an optimized embedding into a heavy-hex superconducting qubit architecture, directly mapping matter and gauge fields to vertex and link superconducting qubits, respectively. Using the structure of local gauge symmetries, we implement a comprehensive suite of error suppression, mitigation, and correction strategies to enable real-time observation and manipulation of electric strings connecting dynamical charges. Our results resolve a dynamical hierarchy of longitudinal oscillations and transverse bending at the end points of the string, which are precursors to hadronization and rotational spectra of mesons. We further explore multi-string processes, observing the fragmentation and recombination of strings. The experimental design supports 300,000 measurement shots per circuit, totaling 600,000 shots per time step, enabling high-fidelity statistics. We employ extensive tensor network simulations using the basis update and Galerkin method to predict large-scale real-time dynamics and validate our error-aware protocols. This work establishes a milestone for probing non-perturbative gauge dynamics via superconducting quantum simulation and elucidates the real-time behavior of confining strings.
Files
2507.08088v1.pdf
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Additional details
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