Dynamical preparation of U(1) quantum spin liquids in an analogue quantum simulator
Simon Karch, Melissa Will, Irene Prieto Rodriguez, Nikolas Liebster, SeungJung Huh, Michael Knap, Frank Pollmann, Clemens Kuhlenkamp, Immanuel Bloch, Monika Aidelsburger

TL;DR
This paper demonstrates the non-equilibrium preparation and detection of U(1) quantum spin liquids in a large-scale ultracold atom quantum simulator, revealing emergent gauge structures and long-range coherence.
Contribution
It introduces a method to realize and probe U(1) quantum spin liquids experimentally in a large-scale ultracold atom system, including new microscopy techniques and coherence detection protocols.
Findings
Validation of Gauss's law in a quench experiment
Observation of real-space correlations and momentum-space pinch points
Detection of large-scale coherence over ~100 lattice sites
Abstract
Locally constrained gauge theories underpin our understanding of fundamental interactions in particle physics and the emergent behaviour of quantum materials. In strongly correlated systems, they can give rise to quantum spin liquids that lack conventional order and are defined by coherent superpositions of an extensive number of many-body configurations. Realising and probing such exotic states experimentally is an outstanding challenge both in solid-state and synthetic quantum systems, not least due to the difficulty of detecting the fragile coherences between many-body states. Here, we report a large-scale (>3,000 sites) realisation of a two-dimensional U(1) lattice gauge theory with ultracold atoms in a square optical superlattice and demonstrate non-equilibrium preparation of extended regions of U(1) quantum spin liquids. We demonstrate Gauss's law validity in a quench experiment,…
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