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Non-Invertible Interfaces Between Symmetry-Enriched Critical Phases

Strongly Correlated Electrons 2025-12-30 v1 Statistical Mechanics High Energy Physics - Theory Quantum Physics

Abstract

Gapless quantum phases can become distinct when internal symmetries are enforced, in analogy with gapped symmetry-protected topological (SPT) phases. However, this distinction does not always lead to protected edge modes, raising the question of how the bulk-boundary correspondence is generalized to gapless cases. We propose that the spatial interface between gapless phases -- rather than their boundaries -- provides a more robust fingerprint. We show that whenever two 1+1d conformal field theories (CFTs) differ in symmetry charge assignments of local operators or twisted sectors, any symmetry-preserving spatial interface between the theories must flow to a non-invertible defect. We illustrate this general result for different versions of the Ising CFT with Z2×Z2T\mathbb{Z}_2 \times \mathbb{Z}_2^T symmetry, obtaining a complete classification of allowed conformal interfaces. When the Ising CFTs differ by nonlocal operator charges, the interface hosts 0+1d symmetry-breaking phases with finite-size splittings scaling as 1/L31/L^3, as well as continuous phase transitions between them. For general gapless phases differing by an SPT entangler, the interfaces between them can be mapped to conformal defects with a certain defect 't Hooft anomaly. This classification also gives implications for higher-dimensional examples, including symmetry-enriched variants of the 2+1d Ising CFT. Our results establish a physical indicator for symmetry-enriched criticality through symmetry-protected interfaces, giving a new handle on the interplay between topology and gapless phases.

Keywords

Cite

@article{arxiv.2512.23706,
  title  = {Non-Invertible Interfaces Between Symmetry-Enriched Critical Phases},
  author = {Saranesh Prembabu and Shu-Heng Shao and Ruben Verresen},
  journal= {arXiv preprint arXiv:2512.23706},
  year   = {2025}
}

Comments

11 pages, 7 figures + 4 page appendix

R2 v1 2026-07-01T08:44:46.448Z