quantum computing

Lattice Quantum Chromodynamics for Quantum Simulations

arXiv:2607.26445

summary

The paper presents a framework for simulating lattice SU(Nc) gauge theories with quarks on quantum computers, demonstrating noiseless quantum simulations of QCD (Nc=3) on small lattices and exploring theta‑angle effects, hadronic states, and baryon chemical potential.

Abstract

We develop a framework for quantum simulations of lattice SU() gauge theory with quarks. Staggered and Wilson lattice fermions are considered in two and three spatial dimensions and a theta angle is included in three dimensions. The physical, gauge-invariant Hilbert space is formulated in a representation basis, where gauge and fermionic degrees of freedom are encoded by irreducible representations of SU() that tensor at each lattice site to contain a singlet. We discuss algorithms for simulating time evolution on quantum computers and carry out noiseless simulations of lattice quantum chromodynamics () on small lattices with up to 32 qubits, showcasing theta angle effects, hadronic states, string dynamics, and a baryon chemical potential for the first time in three spatial dimensions.

70 pages, 21 figures

Topics & keywords

#lattice gauge theory#quantum simulation#staggered fermions#Wilson fermions#theta angleSU(3)staggered fermionsWilson fermionstheta anglebaryon chemical potentialquantum circuit