Beyond minimal coupling for charged scalars? Modified electrodynamics and London-penetration tests
Abstract
While standard minimal coupling works well for Dirac fermions, its application to scalar fields features a known ``peculiarity'': the term linear in does not coincide with the conserved Noether current of the interacting theory. We recently proposed choosing a different principle for electromagnetic interactions, namely a linear coupling with a (globally) conserved current, accepting the consequence that one must abandon full local gauge invariance in the electromagnetic sector and adopt an extended electrodynamics (of Aharonov--Bohm type) that can couple consistently to non-locally-conserved currents. We present the physical motivations offered for proposing the modified coupling and discuss general consequences of reducing gauge invariance. We then focus on the central condensed-matter claim: for bosonic charged condensates, the modified framework predicts a rescaled magnetic penetration depth , while leaving other key qualitative features of superconducting electrodynamics and the type-I/type-II distinction unchanged (up to an equivalent rescaling of the GL parameter). Finally, we analyze experimental data for a London-length consistency check based on independent measurements of the ratio between carrier density and effective mass. We compare for five materials an ``optical'' penetration depth inferred from IR/THz superfluid spectral weight with a ``magnetic'' depth obtained independently (LE-SR, TF-SR, microwave methods, etc.). Data for Nb, YBCO and Ba(Fe,Co)As confirm the hypothesis , with a ratio not far from 1.4; data for Pb are inconclusive while data for MgB indicate as predicted by the standard theory.
Keywords
Cite
@article{arxiv.2605.20499,
title = {Beyond minimal coupling for charged scalars? Modified electrodynamics and London-penetration tests},
author = {F. Minotti and G. Modanese},
journal= {arXiv preprint arXiv:2605.20499},
year = {2026}
}
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15 pages