paper

Beyond minimal coupling for charged scalars? Modified electrodynamics and London-penetration tests

arXiv:2605.20499

Abstract

We discuss an effective modification of the electromagnetic coupling for charged scalar condensates. The motivation is not an inconsistency of standard scalar QED, but a semiclassical tension: for scalar fields the term linear in is not itself the conserved source current of the interacting theory, while for Dirac fields the usual interaction already has the form with an -independent conserved current. We review this distinction, clarify the effective-theory status of the alternative coupling, and state explicitly the corresponding limitations: the framework is not proposed as a UV-complete replacement of gauge theory and standard Ward identities or scattering-theory results should not be expected to survive unchanged. We then focus on the condensed-matter consequence relevant to superconductors. For bosonic charged condensates the modified framework predicts a rescaled magnetic penetration depth, , while leaving the qualitative structure of AC electrodynamics and the type-I/type-II classification unchanged up to parameter mapping. Finally, we compare literature values of an ``optical'' penetration depth , inferred from optical/THz superfluid spectral weight, with independently determined magnetic lengths for Nb, Pb, YBCO, MgB and Ba(Fe,Co)As. The present data do not constitute a proof of the modified coupling, because sample, doping and disorder systematics remain important; nevertheless, Nb, optimally doped YBCO and Ba(Fe,Co)As show the suggestive trend , whereas MgB is consistent with the standard result and Pb is not a clean test because of strong nonlocal corrections.

16 pages

Beyond minimal coupling for charged scalars? Modified electrodynamics and London-penetration tests · wovepaper