arXiv:2606.09394·v2·High Energy Physics — Phenomenology
Strong-field control of the -boson resonance in collisions
Fengye Chen🇨🇳 · Qingzheng Lv🇨🇳 · Libin Fu🇨🇳
Abstract
Resonant -boson production is a cornerstone of precision electroweak physics, with its vacuum line shape set by the mass, width, and collision kinematics. We show that a strong laser field can significantly alter this picture. By treating the field nonperturbatively, we find that laser dressing of the incoming fermions alters the effective collision kinematics and opens laser-photon exchange channels, including multiphoton processes, in collisions. As a result, the -resonance profile develops distinct intensity-dependent regimes, evolving from the vacuum limit to saturation at intermediate field strengths and to an approximately quadratic enhancement at higher intensities. Additionally, the polarization composition of the produced bosons is redistributed. In particular, at high intensities the laser-induced contribution can compensate the intrinsic chiral asymmetry of the electroweak interaction, leading to nearly parity-balanced -boson production. Our results identify that strong classical fields can dynamically control electroweak resonance phenomena, opening a bridge between strong-field QED and high-energy collider physics.
Comments: The incorrect summation of the spin and polarization indices in Equations (23) and (30) in the supplementary materials has been removed