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Time-Reversal Symmetry and Geometric Constraints on the Residue Phase of Pion Photoproduction via Δ(1232)

Ceci, S.; Omerović, R.; Osmanović, H.; Uroić, M.; Vukšić, M.; Zauner, B. Time-Reversal Symmetry and Geometric Constraints on the Residue Phase of Pion Photoproduction via Δ(1232). 
Symmetry 2026, 18, 1184. 

The electromagnetic coupling phase at the complex resonance pole is a fundamental property of nucleon excitations. However, its extraction from pion photoproduction data remains model-dependent, particularly for the 𝛥(1232)  resonance, where modern multichannel analyses report helicity amplitude phases ranging from +3 to −18°. In this Letter, we present a largely model-independent geometric S-matrix formalism that provides a physical constraint for this ambiguity. By imposing Watson’s final-state interaction theorem, a direct consequence of S-matrix unitarity and time-reversal symmetry, on the real energy axis and performing an analytic continuation, we isolate the kinematic threshold barriers of the photoproduction (𝑘·𝑞) and elastic (𝑞3) amplitudes. For the dominant 𝑀1+ multipole transition of the 𝛥(1232), our method yields a kinematically constrained prediction of 𝜙𝐸𝑀=−8.5°+0.6°−1.0° for the electromagnetic residue phase. This geometric constraint explains the numerical results of coupled-channel phenomenological fits, validating the extractions by the SAID and Bonn–Gatchina groups, and establishes a theoretical benchmark for evaluating resonance properties.



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Geometric Constraint on Residue Phases: Resolving the N (2190) Anomaly and Implications for Exotic States

S. Ceci, R. Omerović, H. Osmanović, M. Uroić, M. Vukšić, B. Zauner, Geometric constraint on residue phases: resolving the N(2190) anomaly and implications for exotic states, Physics Letters B, Volume 875, 2026, 140332, ISSN 0370-2693, https://doi.org/10.1016/j.physletb.2026.140332.

(https://www.sciencedirect.com/science/article/pii/S0370269326001863)

Abstract: We derive a parameter-free geometric constraint on residue phases dictated by the pole-threshold angle. Using the N(2190) anomaly as a test case, this constraint reveals a sign ambiguity in prior data; correcting the sign ambiguity yields a phase of −28∘±10∘, matching our prediction. This consistency validates the method as a model-independent diagnostic for distinguishing compact from molecular states, offering a rigorous tool for exotic spectroscopy.

Keywords: Unitary S-matrix; Baryon and meson resonances; Resonant properties




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KLF Collaboration

K Long Facility

About PWA TUZLA

We are theoretical physicists at Faculty of Natural Sciences and Mathematics - University of Tuzla. Our group is a part of the Mainz - Tuzla - Zagreb Partial Wave Analysis collaboration.

As a part of the MTZ PWA, our results are "above the line" in PDG library.

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