Non-Abelian String-Breaking Dynamics on a Qudit Quantum Computer

Fuente: arXiv
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Main Authors: John, Manuel, Pareek, Keshav, Tirler, Peter, Gollerthan, Tim, Meth, Michael, Gerster, Lukas, Zoller, Peter, González-Cuadra, Daniel, Zache, Torsten V., Ringbauer, Martin
Format: Preprint
Published: 2026
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author John, Manuel
Pareek, Keshav
Tirler, Peter
Gollerthan, Tim
Meth, Michael
Gerster, Lukas
Zoller, Peter
González-Cuadra, Daniel
Zache, Torsten V.
Ringbauer, Martin
author_facet John, Manuel
Pareek, Keshav
Tirler, Peter
Gollerthan, Tim
Meth, Michael
Gerster, Lukas
Zoller, Peter
González-Cuadra, Daniel
Zache, Torsten V.
Ringbauer, Martin
contents Gauge theories form the foundation of the Standard Model of particle physics. These theories can exhibit confinement, where charged particles only occur in bound states, connected by flux strings whose energy grows linearly with separation. Simulating the real-time dynamics of such strings, including their breaking, remains a major challenge for classical computations and a promising target for quantum simulations. While recent quantum simulation experiments explored string-breaking dynamics in abelian lattice gauge theories, non-abelian theories are qualitatively distinct because gauge fields themselves carry charge. Here, we report the first quantum simulation of genuine non-abelian string-breaking dynamics in a pure SU($2$) lattice gauge theory, where gauge-field self-interactions drive string breaking even in the absence of dynamical matter. Our results are obtained on a trapped-ion quantum computer, using native qudit Hilbert spaces to encode truncated gauge fields on a ladder geometry and implement digital Trotter dynamics. We experimentally study unbreakable and breakable strings generated by fundamental and adjoint static charges, respectively. We locally resolve string oscillations and coherent string breaking through the creation of gluonic excitations driven by non-abelian plaquette interactions. Our work establishes hardware-efficient, problem-tailored qudit simulations as a promising route for accessing non-perturbative dynamics relevant to high-energy physics.
format Preprint
id arxiv_https___arxiv_org_abs_2605_05841
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Non-Abelian String-Breaking Dynamics on a Qudit Quantum Computer
John, Manuel
Pareek, Keshav
Tirler, Peter
Gollerthan, Tim
Meth, Michael
Gerster, Lukas
Zoller, Peter
González-Cuadra, Daniel
Zache, Torsten V.
Ringbauer, Martin
Quantum Physics
Gauge theories form the foundation of the Standard Model of particle physics. These theories can exhibit confinement, where charged particles only occur in bound states, connected by flux strings whose energy grows linearly with separation. Simulating the real-time dynamics of such strings, including their breaking, remains a major challenge for classical computations and a promising target for quantum simulations. While recent quantum simulation experiments explored string-breaking dynamics in abelian lattice gauge theories, non-abelian theories are qualitatively distinct because gauge fields themselves carry charge. Here, we report the first quantum simulation of genuine non-abelian string-breaking dynamics in a pure SU($2$) lattice gauge theory, where gauge-field self-interactions drive string breaking even in the absence of dynamical matter. Our results are obtained on a trapped-ion quantum computer, using native qudit Hilbert spaces to encode truncated gauge fields on a ladder geometry and implement digital Trotter dynamics. We experimentally study unbreakable and breakable strings generated by fundamental and adjoint static charges, respectively. We locally resolve string oscillations and coherent string breaking through the creation of gluonic excitations driven by non-abelian plaquette interactions. Our work establishes hardware-efficient, problem-tailored qudit simulations as a promising route for accessing non-perturbative dynamics relevant to high-energy physics.
title Non-Abelian String-Breaking Dynamics on a Qudit Quantum Computer
topic Quantum Physics
url https://arxiv.org/abs/2605.05841