Observation of genuine $2+1$D string dynamics in a U$(1)$ lattice gauge theory with a tunable plaquette term on a trapped-ion quantum computer
Rohan Joshi, Yizhuo Tian, Kevin Hemery, N. S. Srivatsa, Jesse J. Osborne, Henrik Dreyer, Enrico Rinaldi, Jad C. Halimeh

TL;DR
This work demonstrates the first large-scale quantum simulation of 2+1D string dynamics in a U(1) lattice gauge theory using a trapped-ion quantum computer, revealing genuine 2D gauge phenomena.
Contribution
The paper reports the implementation of a tunable plaquette term in a 2D U(1) gauge model on a quantum computer, enabling the simulation of string-breaking and photon-like excitations.
Findings
Observation of string propagation and breaking in 2+1D.
Detection of electron-positron pair production during string annihilation.
Signatures of genuine 2+1D gauge dynamics only with a nonzero plaquette term.
Abstract
Quantum simulations of high-energy physics in D can probe dynamical phenomena nonexistent in one spatial dimension and access regimes that are challenging for existing classical simulation methods. For string dynamics -- relevant to hadronization -- a plaquette term is required to realize genuine D behavior, as it endows the gauge field with dynamics and enables the propagation of photon-like excitations. Here, we realize a U quantum link model of quantum electrodynamics in two spatial dimensions with a tunable plaquette term on a \texttt{Quantinuum System Model H2} quantum computer. We implement, to our knowledge, the largest quantum simulation of string-breaking dynamics reported to date, on a matter-site square lattice using qubits. The simulation uses a shallow circuit design with a two-qubit gate depth of per Trotter step and up to …
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