Quantum trajectory simulation of two-dimensional non-equilibrium steady states with a trapped ion quantum processor
Abstract
Digital quantum computers offer a promising route for studying complex many-body systems that are otherwise inaccessible by their classical counterparts. Capabilities including mid-circuit measurements and feedback allow for simulating the dynamics of interacting open quantum systems. Using the Quantinuum System Model H1 trapped-ion quantum computer, we experimentally realise quantum trajectories for a two-dimensional system of (interacting) particles-hard-core bosons or fermions-undergoing stochastic driving at a source and drain at opposite corners of a square lattice. We study the non-equilibrium steady state with persistent current resulting from the this in/out flow of particles. The particle statistics, presence of interactions, and introduction of a magnetic field produce measurable effects on the steady state. Our findings highlight the rich physics in this corner driven two-dimensional setup and showcases both the power and current limitations of quantum computers as a platform to study it.
Cite
@article{arxiv.2605.08350,
title = {Quantum trajectory simulation of two-dimensional non-equilibrium steady states with a trapped ion quantum processor},
author = {Anna Dalmasso and Arash Jafarizadeh and Julian Boesl and Jared Jeyaretnam and Sheng-Hsuan Lin and Andrew G. Green and Frank Pollmann and Michael Knap and Juan P. Garrahan and Henrik Dreyer and Adam Gammon-Smith},
journal= {arXiv preprint arXiv:2605.08350},
year = {2026}
}
Comments
5 pages, 4 figures (+ 8 pages appendices, 10 figures)