Simulating Quantum Mechanics with a $\theta$-term and an 't Hooft Anomaly on a Synthetic Dimension
Jiayu Shen, Di Luo, Chenxi Huang, Bryan K. Clark, Aida X. El-Khadra,, Bryce Gadway, Patrick Draper

TL;DR
This paper explores quantum simulation of simplified gauge theories with a $ heta$-term and 't Hooft anomaly, using Rydberg atoms to emulate key phenomena like symmetry breaking and instanton effects in real time.
Contribution
It proposes a feasible experimental scheme for simulating a particle-on-a-circle model with a $ heta$-term, capturing essential physics of higher-dimensional gauge theories in a quantum device.
Findings
Simulation captures tunneling rate dependence on $ heta$
Realistic parameters demonstrate observable phenomena
Model retains key features of parent gauge theories
Abstract
A topological -term in gauge theories, including quantum chromodynamics in 3+1 dimensions, gives rise to a sign problem that makes classical Monte Carlo simulations impractical. Quantum simulations are not subject to such sign problems and are a promising approach to studying these theories in the future. In the near term, it is interesting to study simpler models that retain some of the physical phenomena of interest and their implementation on quantum hardware. For example, dimensionally-reducing gauge theories on small spatial tori produces quantum mechanical models which, despite being relatively simple to solve, retain interesting vacuum and symmetry structures from the parent gauge theories. Here we consider quantum mechanical particle-on-a-circle models, related by dimensional reduction to the 1+1d Schwinger model, that possess a -term and realize an 't Hooft…
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