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arXiv · 2603.09895

Critical behavior of the thermal phase transition of U(1) lattice gauge systems

Abstract

We model the phase transition of a superconductor as a U(1) lattice gauge system, and determine its critical behavior. For this, we perform Monte Carlo simulations, treating the order parameter field and the gauge field on equal footing, without additional approximations. As the defining correlation function, we determine the order parameter correlation function including a gauge string, thus achieving a gauge-invariant characterization of the long-range behavior explicitly. We obtain a critical exponent $\beta$ that is consistent with the exponent of the U(1) transition of neutral bosons, i.e. of Bose-Einstein condensation. We further extract the anomalous dimension $\eta$ for our parameter sets which is significantly smaller than the U(1) anomalous dimension. We determine the critical behavior of the heat capacity, which displays a temperature depends consistent with an XY transition. These results clarify the universality class of the phase transition of this system.

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Greta Sophie Reese, Ludwig Mathey. 2026-03-10. Critical behavior of the thermal phase transition of U(1) lattice gauge systems. https://arxiv.org/abs/2603.09895

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