arXiv:2602.16834·v1·High Energy Physics — Phenomenology
New Physics and Symmetry Tests with Polarized Photon Fusion and Dipole Moments
Abstract
We discuss new-physics searches and symmetry tests with dipole moments, emphasizing the role of polarization observables. As a primary benchmark, we consider polarized photon fusion in the environment of the Super Tau-Charm Facility (STCF) and study in the nearly back-to-back region, where a transverse-momentum-dependent (TMD) description provides a convenient framework for organizing polarization effects. We show that linearly polarized photons induce characteristic azimuthal asymmetries in the kinematics, enabling polarization-based observables that enhance sensitivity to the electromagnetic dipole form factors. Moreover, -even and -odd dipole interactions can be disentangled through distinct angular structures, offering a systematic path to probe dipole moments with improved precision at future lepton colliders. As an illustration, we obtain an improved reach on the anomalous magnetic dipole moment, , reaching a precision level close to the Standard Model expectation. To place these prospects in a broader context, we briefly summarize the experimental status of dipole-moment measurements across different fermionic systems and highlight their complementarity in constraining new physics. We illustrate this interplay with supersymmetric scenarios featuring -parity violation, in which loop-induced dipole moments provide correlated probes of -conserving and -violating interactions. Taken together, polarized photon fusion and precision dipole measurements constitute a coherent program for testing fundamental symmetries and exploring physics beyond the Standard Model.
Comments: Proceedings for the 26th International Symposium on Spin Physics (SPIN2025), September 21-26, 2025, Qingdao, China