arXiv · 2511.08584
Steady-states and response functions of the periodically driven O(N) scalar field theory
Abstract
We investigate the phase diagram of a relativistic, parametrically driven O($N$)-symmetric theory coupled to a Markovian thermal bath. Our analysis reveals a rich variety of phases, including both uniform and spatially modulated symmetry-broken states, some of which feature an order parameter oscillating at half the drive frequency. When coupled to a background electromagnetic potential, these phases exhibit a Meissner effect, in the sense that the photon acquires a mass term. However, if the order parameter oscillates around a sufficiently small value, a fraction of an externally applied magnetic field can penetrate the sample in the form of a standing wave. We dub this property a \textit{Meissner polariton}, that is, a collective mode resulting from the hybridization of light with order parameter oscillations. Furthermore, near the onset of symmetry breaking, strong fluctuations give rise to a superconducting-like response even in the absence of a Meissner effect or of a Meissner polariton. Our results are relevant to experiments on light-induced orders, particularly superconductivity.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Oriana K. Diessel, Subir Sachdev, Pietro M. Bonetti. 2025-11-11. Steady-states and response functions of the periodically driven O(N) scalar field theory. https://doi.org/10.1088/1361-6633%2Fae4ad3
Cite the original work for its findings. Save a collection to share your selection of sources.